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<article xmlns:xlink="http://www.w3.org/1999/xlink" xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:oasis="http://docs.oasis-open.org/ns/oasis-exchange/table" dtd-version="3.0">
  <front>
    <journal-meta>
<journal-id journal-id-type="publisher">CP</journal-id>
<journal-title-group>
<journal-title>Climate of the Past</journal-title>
<abbrev-journal-title abbrev-type="publisher">CP</abbrev-journal-title>
<abbrev-journal-title abbrev-type="nlm-ta">Clim. Past</abbrev-journal-title>
</journal-title-group>
<issn pub-type="epub">1814-9332</issn>
<publisher><publisher-name>Copernicus Publications</publisher-name>
<publisher-loc>Göttingen, Germany</publisher-loc>
</publisher>
</journal-meta>

    <article-meta>
      <article-id pub-id-type="doi">10.5194/cp-12-1-2016</article-id><title-group><article-title>Evidence of a prolonged drought ca. 4200 yr BP correlated with prehistoric
settlement abandonment from the Gueldaman <?xmltex \hack{\newline}?>GLD1 Cave, Northern Algeria</article-title>
      </title-group><?xmltex \runningtitle{Evidence of a prolonged drought ca. 4200\,yr BP}?><?xmltex \runningauthor{J. Ruan et al.}?>
      <contrib-group>
        <contrib contrib-type="author" corresp="yes" rid="aff1 aff5">
          <name><surname>Ruan</surname><given-names>J.</given-names></name>
          <email>jiaoyangruan@gmail.com</email>
        <ext-link>https://orcid.org/0000-0003-4733-1125</ext-link></contrib>
        <contrib contrib-type="author" corresp="no" rid="aff2">
          <name><surname>Kherbouche</surname><given-names>F.</given-names></name>
          
        </contrib>
        <contrib contrib-type="author" corresp="no" rid="aff1">
          <name><surname>Genty</surname><given-names>D.</given-names></name>
          
        </contrib>
        <contrib contrib-type="author" corresp="no" rid="aff1">
          <name><surname>Blamart</surname><given-names>D.</given-names></name>
          
        </contrib>
        <contrib contrib-type="author" corresp="no" rid="aff3 aff4">
          <name><surname>Cheng</surname><given-names>H.</given-names></name>
          
        </contrib>
        <contrib contrib-type="author" corresp="no" rid="aff1">
          <name><surname>Dewilde</surname><given-names>F.</given-names></name>
          
        </contrib>
        <contrib contrib-type="author" corresp="no" rid="aff2">
          <name><surname>Hachi</surname><given-names>S.</given-names></name>
          
        </contrib>
        <contrib contrib-type="author" corresp="no" rid="aff4">
          <name><surname>Edwards</surname><given-names>R. L.</given-names></name>
          
        </contrib>
        <contrib contrib-type="author" corresp="no" rid="aff1">
          <name><surname>Régnier</surname><given-names>E.</given-names></name>
          
        </contrib>
        <contrib contrib-type="author" corresp="no" rid="aff5">
          <name><surname>Michelot</surname><given-names>J.-L.</given-names></name>
          
        </contrib>
        <aff id="aff1"><label>1</label><institution>Laboratoire des Sciences du Climat et de l'Environnement,
Gif-sur-Yvette, France</institution>
        </aff>
        <aff id="aff2"><label>2</label><institution>Centre National de Recherches Préhistoriques, Anthropologiqes et
Historiques, Algiers, Algeria</institution>
        </aff>
        <aff id="aff3"><label>3</label><institution>Institute of Global Environmental Change, Xi'an Jiaotong University,
Xi'an, China</institution>
        </aff>
        <aff id="aff4"><label>4</label><institution>Department of Geological Sciences, University of Minnesota, Minnesota,
USA</institution>
        </aff>
        <aff id="aff5"><label>5</label><institution>Laboratoire Géosciences Paris Sud, UMR 8148, Université
Paris-Sud, Orsay, France</institution>
        </aff>
      </contrib-group>
      <author-notes><corresp id="corr1">J. Ruan (jiaoyangruan@gmail.com)</corresp></author-notes><pub-date><day>15</day><month>January</month><year>2016</year></pub-date>
      
      <volume>12</volume>
      <issue>1</issue>
      <fpage>1</fpage><lpage>14</lpage>
      <history>
        <date date-type="received"><day>12</day><month>June</month><year>2015</year></date>
           <date date-type="rev-request"><day>3</day><month>July</month><year>2015</year></date>
           <date date-type="rev-recd"><day>3</day><month>December</month><year>2015</year></date>
           <date date-type="accepted"><day>14</day><month>December</month><year>2015</year></date>
      </history>
      <permissions>
<license license-type="open-access">
<license-p>This work is licensed under a Creative Commons Attribution 3.0 Unported License. To view a copy of this license, visit <ext-link ext-link-type="uri" xlink:href="http://creativecommons.org/licenses/by/3.0/">http://creativecommons.org/licenses/by/3.0/</ext-link></license-p>
</license>
</permissions><self-uri xlink:href="https://cp.copernicus.org/articles/12/1/2016/cp-12-1-2016.html">This article is available from https://cp.copernicus.org/articles/12/1/2016/cp-12-1-2016.html</self-uri>
<self-uri xlink:href="https://cp.copernicus.org/articles/12/1/2016/cp-12-1-2016.pdf">The full text article is available as a PDF file from https://cp.copernicus.org/articles/12/1/2016/cp-12-1-2016.pdf</self-uri>


      <abstract>
    <p>Middle Holocene cultures have been widely studied around the Eastern-Mediterranean
basin in the last 30 years and past cultural activities have been commonly
linked with regional climate changes. However, in many cases such linkage is
equivocal, in part due to existing climatic evidence that has been derived
from areas outside the distribution of ancient settlements, leading to
uncertainty from complex spatial heterogeneity in both climate and
demography. A few high-resolution well-dated paleoclimate records were
recently established using speleothems in the Central and Eastern-Mediterranean
basin, however, the scarcity of such records in the western part of the
Mediterranean prevents us from correlating past climate evolutions across
the basin and deciphering climate–culture relation at fine timescales.</p>
    <p>Here we report the first decadal-resolved Mid-Holocene climate proxy records
from the Western-Mediterranean basin based on the stable carbon and oxygen
isotopes analyses of two U/Th dated stalagmites from the Gueldaman GLD1 Cave
in Northern Algeria. Comparison of our records with those from Italy and Israel
reveals synchronous (multi) centennial dry phases centered at ca. 5600, ca. 5200 and ca. 4200 yr BP across the Mediterranean basin. New
calibrated radiocarbon dating constrains reasonably well the age of rich
anthropogenic deposits (e.g., faunal remains, pottery, charcoal) excavated
inside the cave, which allows the comparison between in situ evidence of
human occupation and of climate change. This approach shows that the timing
of a prolonged drought at ca.  4400–3800 yr BP blankets the onset of cave
abandonment shortly after ca. 4403 cal yr BP, supporting the hypothesis that
a climate anomaly may have played a role in this cultural disruption.</p>
  </abstract>
    </article-meta>
  </front>
<body>
      

      <?xmltex \floatpos{t}?><fig id="Ch1.F1" specific-use="star"><caption><p>The Gueldaman GLD1 Cave (36<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mo>∘</mml:mo></mml:msup></mml:math></inline-formula>26<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mo>′</mml:mo></mml:msup></mml:math></inline-formula> N, 4<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mo>∘</mml:mo></mml:msup></mml:math></inline-formula>34<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mo>′</mml:mo></mml:msup></mml:math></inline-formula> E, 507 m a.s.l.).
The top left shows the location of the Gueldaman GLD1 Cave, in the
Northern-Algerian
part of the Western-Mediterranean basin; the bottom left shows a photo of cave entrance and
local vegetation cover; the right panel shows maps of inner cave where
stalagmites and archaeological deposits are collected.</p></caption>
      <?xmltex \igopts{width=398.338583pt}?><graphic xlink:href="https://cp.copernicus.org/articles/12/1/2016/cp-12-1-2016-f01.png"/>

    </fig>

<sec id="Ch1.S1" sec-type="intro">
  <title>Introduction</title>
      <p>As drought in Northwestern Africa is a recurring phenomenon and prolonged dry
conditions exert a significant impact on local social systems, it becomes
important to accurately document the role of drought conditions on the area.
For instance, the most recent drought in Algeria began in 1998, as part of a
widespread pattern of drying in the Northern Hemisphere, and brought considerable
loss in regards to water resource and agricultural yields (Hoerling and
Kumar, 2003). Increasingly dry sub-tropical conditions are predicted as one
potential consequence of anthropogenic climate change, but current general
circulation models do not completely capture the magnitude and spatial
extent of observed drought conditions (Seager et al.,
2007). To help understand recent climate anomalies, paleoclimate studies are
crucial to characterize the range of potential natural variability in the
past and to improve our understanding of the links between regional drought
and large-scale forcing. Instrumental data from weather stations in
Northwestern Africa report less than 100 years. Tree ring based drought
reconstructions in Algeria and Tunisia have been extended back to the last
9 centuries, which reveals large spatial heterogeneity of past climate
evolutions in Northwestern Africa and concludes that the climate anomaly 1998–2002
appears to be the most severe in the last millennium (Touchan
et al., 2008, 2011). Holocene paleoclimate studies in other
regions, however, have suggested larger oscillations at centennial to
millennial timescales highlighting the need for new records from this area
(Mayewski et al., 2004; Wanner et al., 2008).</p>
      <p>A significant climate excursion ca. 4200 yr BP has been widely reported and
is considered as an ideal case to study the causes and effects of a
large-scale climate anomaly that occurred against background conditions
similar to those of today (Berkelhammer et al., 2013; Booth et al., 2005;
Dixit et al., 2014; Roland, 2012). The climatic expression of the 4200 yr BP
event differs around the world. For example, it has been documented as
droughts in much of mid-to-low latitudes, across Africa, Asia and North America,
wet and stormy in Northern Europe and cooler in North Atlantic (Booth et
al., 2005; Roland, 2012). More recently, this climatic anomaly was
characterized by extreme dry conditions on high-resolved speleothem isotope
records from the Central (Drysdale et al., 2006; Zanchetta et al., 2014)
and Eastern-Mediterranean basin (Bar-Matthews and Ayalon, 2011), but, until
now, such records have not been available in the Western Mediterranean which prevents us from having access to the correlation of past climate anomalies across the basin.</p>
      <p>Aside from its climatic interest, such an episode likely influenced numerous
human cultures. Major societal changes have been observed across the
Mediterranean basin during the Mid-Holocene, and in particular, a
catastrophic desiccation ca. 4200 yr BP has been suggested to be the trigger of the
collapse of the Akkadian Empire in Mesopotamia, the Old Kingdom in Egypt and
the Early Bronze Age civilizations of Greece and Crete (Weiss and
Bradley, 2000; Weiss et al., 1993; Wiener, 2014). These studies have been
stimulating an increasing number of debates on climate–culture relationship
(e.g., Coombes and Barber, 2005). Uncertainty regarding the
societal impact of such an event is still large, due in part that climatic
evidence, in many cases, has been derived from regions far from the
distribution of ancient settlements (e.g., Cullen et al.,
2000). Although the 4200 yr BP dry event has been observed in several mid-latitude sites, the database remains incomplete and conflicting observations
of climatic conditions between seemingly adjacent regions exist (Magny et
al., 2013; Staubwasser and Weiss, 2006). Additionally, a recent study
demonstrated that the climatic impact on many agricultural settlements in
ancient Near East was diverse even within spatially limited cultural units
(Riehla et al., 2014).</p>
      <p>In Northern Algeria, the extinction of large mammal species (e.g., <italic>Syncerus antiquus</italic>) during the
Mid-Holocene was correlated with regional climate aridity, likely due to the
competition with pastoralists and livestock for increasingly scarce water
(Faith, 2014). Similarly, the evidence of the aridity (i.e., the
termination of the African Humid Period) that provoked this extinction has
been derived from the Sahara and its surroundings (deMenocal et al.,
2000), which is several hundred kilometers away, leaving this assertion
ambiguous and stimulating the search for new high-resolution paleoclimate
records in the area.</p>
      <p>In this study, we document the Mid-Holocene climate history in the Western
Mediterranean by decadal-resolved stable carbon and oxygen isotopes analyses
of two U/Th dated stalagmites from the Gueldaman GLD1 Cave of Northern Algeria. We
compare the records with those established earlier in the Central and
Eastern-Mediterranean basin. In addition, we describe archaeological deposits
layers inside the cave whose ages have been reasonably well constrained due
to new radiocarbon dating. Finally we test the links between cultural
changes and climate anomalies with a particular emphasis on the 4200 yr BP
event.</p>
</sec>
<sec id="Ch1.S2">
  <title>Samples and methods</title>
<sec id="Ch1.S2.SS1">
  <title>Study site</title>
      <p>Gueldaman GLD1 Cave is one of a series of karstic caves formed within the
southeastward slope of the Adrar Gueldaman ridge, western part of Babor mountains
in Northern Algeria (Kherbouche et al., 2014). It is located
close to the large Soummam River, 5–6 km from the Akbou town, and
approximately 65 km southern inland from the Western-Mediterranean Sea
(36<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mo>∘</mml:mo></mml:msup></mml:math></inline-formula>26<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mo>′</mml:mo></mml:msup></mml:math></inline-formula> N, 4<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mo>∘</mml:mo></mml:msup></mml:math></inline-formula>34<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mo>′</mml:mo></mml:msup></mml:math></inline-formula> E, 507 m a.s.l.; Fig. 1). Gueldaman GLD1 is a
relatively short cave (total extension of <inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 80 m) that
developed in Jurassic limestone. The entrance, facing to the SE, is a
semi-circular <inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 6 m large arch, leading to a dome-shaped
<inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 10 m high and 6 m wide corridor which ends with the main
chamber “Grande Salle” at a depth of 30–40 m. Previous archaeological
excavation and field investigation suggest that Gueldaman GLD1 Cave has
probably been open since at least ca. 7 ka ago
(Kherbouche et al., 2014). The area is covered by a thin
layer (&lt; 10 cm) of soil derived from the limestone bedrock,
wind-blown silicate dust, and organic matter from local vegetation such as
<italic>Pistacia lentiscus, Quercus ilex, Buxus sempervirens</italic>, typical Mediterranean <italic>Garrigue</italic> type plant assemblage (C3 dominated).</p>
      <p>Local climate is Mediterranean semi-arid type, characterized by hot-dry
summers and mild-wetter winters. From the ERA-interim reanalysis data
between 1979 and 2013 (<uri>http://apps.ecmwf.int/datasets/</uri>) the annual total
rainfall is 516 mm, and the annual mean temperature is 17.2 <inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mo>∘</mml:mo></mml:msup></mml:math></inline-formula>C.
Rainfall occurs rarely in the summer (37 mm) but relatively evenly through
the autumn (155 mm), winter (178 mm) and spring (147 mm). Gueldaman GLD1
Cave is well ventilated with the outside atmosphere due to its larger
opening and shorter extension. Hobo logger data at 10 min resolution from
November 2013 to April 2015 shows significant variations in cave temperature
ranging from 13.7 to 19.5 <inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mo>∘</mml:mo></mml:msup></mml:math></inline-formula>C. The relative humidity
varies from 56 to 94 %. Carbon dioxide has not been measured, but it
is likely to be close to the atmospheric value.</p>

      <?xmltex \floatpos{t}?><fig id="Ch1.F2"><caption><p>U/Th dating of stalagmites GLD1-stm2 and GLD1-stm4 from the
Gueldaman GLD1 Cave. U/Th dates and 2<inline-formula><mml:math display="inline"><mml:mi mathvariant="italic">σ</mml:mi></mml:math></inline-formula> errors are shown next to
sampling positions.</p></caption>
          <?xmltex \igopts{width=236.157874pt}?><graphic xlink:href="https://cp.copernicus.org/articles/12/1/2016/cp-12-1-2016-f02.pdf"/>

        </fig>

</sec>
<sec id="Ch1.S2.SS2">
  <title>Stalagmites Analyses</title>
      <p>Two stalagmites and three modern calcites samples were collected in 2012 and
2013 from the main chamber of Gueldaman GLD1 Cave. Both stalagmites were
laid on the cave floor during collection. Stalagmite GLD1-stm2 is 350 mm
long and 100–200 mm wide; stalagmite GLD1-stm4 is 203 mm long with a
diameter of 50–120 mm (Fig. 2). They were halved and polished along the
longitudinal axis. It was noticed from the sectioned sample that stalagmite
GLD1-stm2 was broken at the depth of 5 mm from the top and covered by the calcite
deposited at a certain time after that point. The top 5 mm was not analyzed in
this study. Both stalagmites show well-marked laminae with several shifts in
the drip apex of the lower parts (Fig. 2). Black bandings, with visible
incorporations of charcoal particles, are found throughout both stalagmite
profiles.</p>

<?xmltex \floatpos{t}?><table-wrap id="Ch1.T1" specific-use="star"><caption><p>U/Th dates from MC-ICP-MS analyses of stalagmites GLD1-stm2 and
GLD1-stm4 from the Gueldaman GLD1 Cave. Analytical errors are 2<inline-formula><mml:math display="inline"><mml:mi mathvariant="italic">σ</mml:mi></mml:math></inline-formula> of
the mean. U decay constants: <inline-formula><mml:math display="inline"><mml:mrow><mml:msub><mml:mi mathvariant="italic">λ</mml:mi><mml:mn>238</mml:mn></mml:msub><mml:mo>=</mml:mo></mml:mrow></mml:math></inline-formula> 1.55125 <inline-formula><mml:math display="inline"><mml:mo>×</mml:mo></mml:math></inline-formula> 10<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn>10</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> (Jaffey et al., 1971) and <inline-formula><mml:math display="inline"><mml:mrow><mml:msub><mml:mi mathvariant="italic">λ</mml:mi><mml:mn>234</mml:mn></mml:msub><mml:mo>=</mml:mo></mml:mrow></mml:math></inline-formula> 2.82206 <inline-formula><mml:math display="inline"><mml:mo>×</mml:mo></mml:math></inline-formula> 10<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">6</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> (Cheng et al., 2013). Th decay
constant: <inline-formula><mml:math display="inline"><mml:mrow><mml:msub><mml:mi mathvariant="italic">λ</mml:mi><mml:mn>230</mml:mn></mml:msub><mml:mo>=</mml:mo></mml:mrow></mml:math></inline-formula> 9.1705 <inline-formula><mml:math display="inline"><mml:mo>×</mml:mo></mml:math></inline-formula> 10<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">6</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>
(Cheng et al., 2013). <inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mo>*</mml:mo></mml:msup></mml:math></inline-formula> <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>234</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>U <inline-formula><mml:math display="inline"><mml:mo>=</mml:mo></mml:math></inline-formula> ([<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>234</mml:mn></mml:msup></mml:math></inline-formula>U/<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>238</mml:mn></mml:msup></mml:math></inline-formula>U]<inline-formula><mml:math display="inline"><mml:msub><mml:mi/><mml:mtext>activity</mml:mtext></mml:msub></mml:math></inline-formula> – 1) <inline-formula><mml:math display="inline"><mml:mo>×</mml:mo></mml:math></inline-formula> 1000. <inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>*</mml:mo><mml:mo>*</mml:mo></mml:mrow></mml:msup></mml:math></inline-formula> <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>234</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>U<inline-formula><mml:math display="inline"><mml:msub><mml:mi/><mml:mtext>initial</mml:mtext></mml:msub></mml:math></inline-formula> was calculated based on <inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>230</mml:mn></mml:msup></mml:math></inline-formula>Th age (<inline-formula><mml:math display="inline"><mml:mi>T</mml:mi></mml:math></inline-formula>), i.e.,
<inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>234</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>U<inline-formula><mml:math display="inline"><mml:mrow><mml:msub><mml:mi/><mml:mtext>initial</mml:mtext></mml:msub><mml:mo>=</mml:mo><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>234</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>U<inline-formula><mml:math display="inline"><mml:msub><mml:mi/><mml:mtext>measured</mml:mtext></mml:msub></mml:math></inline-formula> <inline-formula><mml:math display="inline"><mml:mo>×</mml:mo></mml:math></inline-formula> e<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mi mathvariant="italic">λ</mml:mi><mml:mn>234</mml:mn><mml:mspace linebreak="nobreak" width="0.125em"/><mml:mo>×</mml:mo><mml:mspace linebreak="nobreak" width="0.125em"/><mml:mi>T</mml:mi></mml:mrow></mml:msup></mml:math></inline-formula>. Corrected <inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>230</mml:mn></mml:msup></mml:math></inline-formula>Th ages assume the
initial <inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>230</mml:mn></mml:msup></mml:math></inline-formula>Th/<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>232</mml:mn></mml:msup></mml:math></inline-formula>Th atomic ratio of 4.4 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.2 <inline-formula><mml:math display="inline"><mml:mo>×</mml:mo></mml:math></inline-formula> 10<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">6</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>. Those are the
values for a material at secular equilibrium, with the bulk earth
<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>232</mml:mn></mml:msup></mml:math></inline-formula>Th/<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>238</mml:mn></mml:msup></mml:math></inline-formula>U value of 3.8. The errors are arbitrarily assumed to be
50 %. <inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>*</mml:mo><mml:mo>*</mml:mo><mml:mo>*</mml:mo></mml:mrow></mml:msup></mml:math></inline-formula> BP stands for “Before Present” where the “Present” is defined
as the year 2000 AD.</p></caption><oasis:table frame="topbot"><?xmltex \begin{scaleboxenv}{.70}[.70]?><oasis:tgroup cols="11">
     <oasis:colspec colnum="1" colname="col1" align="left"/>
     <oasis:colspec colnum="2" colname="col2" align="right"/>
     <oasis:colspec colnum="3" colname="col3" align="right"/>
     <oasis:colspec colnum="4" colname="col4" align="right"/>
     <oasis:colspec colnum="5" colname="col5" align="right"/>
     <oasis:colspec colnum="6" colname="col6" align="right"/>
     <oasis:colspec colnum="7" colname="col7" align="right"/>
     <oasis:colspec colnum="8" colname="col8" align="right"/>
     <oasis:colspec colnum="9" colname="col9" align="right"/>
     <oasis:colspec colnum="10" colname="col10" align="right"/>
     <oasis:colspec colnum="11" colname="col11" align="left"/>
     <oasis:thead>
       <oasis:row>  
         <oasis:entry colname="col1">Sample</oasis:entry>  
         <oasis:entry colname="col2"><inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>238</mml:mn></mml:msup></mml:math></inline-formula>U</oasis:entry>  
         <oasis:entry colname="col3"><inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>232</mml:mn></mml:msup></mml:math></inline-formula>Th</oasis:entry>  
         <oasis:entry colname="col4"><inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>230</mml:mn></mml:msup></mml:math></inline-formula>Th/<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>232</mml:mn></mml:msup></mml:math></inline-formula>Th</oasis:entry>  
         <oasis:entry colname="col5">d<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>234</mml:mn></mml:msup></mml:math></inline-formula>U*</oasis:entry>  
         <oasis:entry colname="col6"><inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>230</mml:mn></mml:msup></mml:math></inline-formula>Th/<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>238</mml:mn></mml:msup></mml:math></inline-formula>U</oasis:entry>  
         <oasis:entry colname="col7"><inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>230</mml:mn></mml:msup></mml:math></inline-formula>Th Age (yr)</oasis:entry>  
         <oasis:entry colname="col8"><inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>230</mml:mn></mml:msup></mml:math></inline-formula>Th Age (yr)</oasis:entry>  
         <oasis:entry colname="col9">d<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>234</mml:mn></mml:msup></mml:math></inline-formula>U<inline-formula><mml:math display="inline"><mml:msub><mml:mi/><mml:mtext>Initial</mml:mtext></mml:msub></mml:math></inline-formula>**</oasis:entry>  
         <oasis:entry colname="col10"><inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>230</mml:mn></mml:msup></mml:math></inline-formula>Th Age (yr BP)***</oasis:entry>  
         <oasis:entry colname="col11">Laboratory</oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">  
         <oasis:entry colname="col1">Number</oasis:entry>  
         <oasis:entry colname="col2">(ppb)</oasis:entry>  
         <oasis:entry colname="col3">(ppt)</oasis:entry>  
         <oasis:entry colname="col4">(atomic x10<inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">6</mml:mn></mml:mrow></mml:msup><mml:mo>)</mml:mo></mml:mrow></mml:math></inline-formula></oasis:entry>  
         <oasis:entry colname="col5">(measured)</oasis:entry>  
         <oasis:entry colname="col6">(activity)</oasis:entry>  
         <oasis:entry colname="col7">(uncorrected)</oasis:entry>  
         <oasis:entry colname="col8">(corrected)</oasis:entry>  
         <oasis:entry colname="col9">(corrected)</oasis:entry>  
         <oasis:entry colname="col10">(corrected )</oasis:entry>  
         <oasis:entry colname="col11"/>
       </oasis:row>
     </oasis:thead>
     <oasis:tbody>
       <oasis:row>  
         <oasis:entry colname="col1">GLD1-stm2-7</oasis:entry>  
         <oasis:entry colname="col2">169 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.1</oasis:entry>  
         <oasis:entry colname="col3">396 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0</oasis:entry>  
         <oasis:entry colname="col4">136 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 1</oasis:entry>  
         <oasis:entry colname="col5">863 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.3</oasis:entry>  
         <oasis:entry colname="col6">0.105 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.001</oasis:entry>  
         <oasis:entry colname="col7">6297 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 40</oasis:entry>  
         <oasis:entry colname="col8">6228 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 72</oasis:entry>  
         <oasis:entry colname="col9">863 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.3</oasis:entry>  
         <oasis:entry colname="col10">6228 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 72</oasis:entry>  
         <oasis:entry colname="col11">LSCE</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">GLD1-stm2-36</oasis:entry>  
         <oasis:entry colname="col2">154 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.2</oasis:entry>  
         <oasis:entry colname="col3">1922 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 39</oasis:entry>  
         <oasis:entry colname="col4">137 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 3</oasis:entry>  
         <oasis:entry colname="col5">910 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.2</oasis:entry>  
         <oasis:entry colname="col6">0.103 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.000</oasis:entry>  
         <oasis:entry colname="col7">6036 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 29</oasis:entry>  
         <oasis:entry colname="col8">5848 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 136</oasis:entry>  
         <oasis:entry colname="col9">925 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.3</oasis:entry>  
         <oasis:entry colname="col10">5835 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 136</oasis:entry>  
         <oasis:entry colname="col11">UM</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">GLD1-stm2-98</oasis:entry>  
         <oasis:entry colname="col2">150 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.2</oasis:entry>  
         <oasis:entry colname="col3">69 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2</oasis:entry>  
         <oasis:entry colname="col4">3077 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 73</oasis:entry>  
         <oasis:entry colname="col5">776 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.4</oasis:entry>  
         <oasis:entry colname="col6">0.086 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.000</oasis:entry>  
         <oasis:entry colname="col7">5374 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 29</oasis:entry>  
         <oasis:entry colname="col8">5366 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 29</oasis:entry>  
         <oasis:entry colname="col9">788 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.5</oasis:entry>  
         <oasis:entry colname="col10">5353 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 29</oasis:entry>  
         <oasis:entry colname="col11">UM</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">GLD1-stm2-180</oasis:entry>  
         <oasis:entry colname="col2">152 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.2</oasis:entry>  
         <oasis:entry colname="col3">161 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 3</oasis:entry>  
         <oasis:entry colname="col4">1157 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 25</oasis:entry>  
         <oasis:entry colname="col5">644 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.0</oasis:entry>  
         <oasis:entry colname="col6">0.074 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.000</oasis:entry>  
         <oasis:entry colname="col7">5036 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 30</oasis:entry>  
         <oasis:entry colname="col8">5018 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 33</oasis:entry>  
         <oasis:entry colname="col9">653 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.1</oasis:entry>  
         <oasis:entry colname="col10">5005 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 33</oasis:entry>  
         <oasis:entry colname="col11">UM</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">GLD1-stm2-192</oasis:entry>  
         <oasis:entry colname="col2">162 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.1</oasis:entry>  
         <oasis:entry colname="col3">182 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 4</oasis:entry>  
         <oasis:entry colname="col4">1158 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 24</oasis:entry>  
         <oasis:entry colname="col5">807 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 1.7</oasis:entry>  
         <oasis:entry colname="col6">0.079 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.000</oasis:entry>  
         <oasis:entry colname="col7">4858 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 16</oasis:entry>  
         <oasis:entry colname="col8">4840 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 20</oasis:entry>  
         <oasis:entry colname="col9">818 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 1.7</oasis:entry>  
         <oasis:entry colname="col10">4827 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 20</oasis:entry>  
         <oasis:entry colname="col11">UM</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">GLD1-stm2-213</oasis:entry>  
         <oasis:entry colname="col2">175 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.2</oasis:entry>  
         <oasis:entry colname="col3">547 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 11</oasis:entry>  
         <oasis:entry colname="col4">390 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 8</oasis:entry>  
         <oasis:entry colname="col5">697 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.0</oasis:entry>  
         <oasis:entry colname="col6">0.074 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.000</oasis:entry>  
         <oasis:entry colname="col7">4841 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 33</oasis:entry>  
         <oasis:entry colname="col8">4788 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 50</oasis:entry>  
         <oasis:entry colname="col9">707 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.1</oasis:entry>  
         <oasis:entry colname="col10">4775 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 50</oasis:entry>  
         <oasis:entry colname="col11">UM</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">GLD1-stm2-286</oasis:entry>  
         <oasis:entry colname="col2">169 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.2</oasis:entry>  
         <oasis:entry colname="col3">207 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 4</oasis:entry>  
         <oasis:entry colname="col4">980 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 21</oasis:entry>  
         <oasis:entry colname="col5">756 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 1.8</oasis:entry>  
         <oasis:entry colname="col6">0.073 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.000</oasis:entry>  
         <oasis:entry colname="col7">4601 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 25</oasis:entry>  
         <oasis:entry colname="col8">4581 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 28</oasis:entry>  
         <oasis:entry colname="col9">765 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 1.9</oasis:entry>  
         <oasis:entry colname="col10">4568 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 28</oasis:entry>  
         <oasis:entry colname="col11">UM</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">GLD1-stm2-320</oasis:entry>  
         <oasis:entry colname="col2">195 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.3</oasis:entry>  
         <oasis:entry colname="col3">384 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 8</oasis:entry>  
         <oasis:entry colname="col4">575 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 12</oasis:entry>  
         <oasis:entry colname="col5">759 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.2</oasis:entry>  
         <oasis:entry colname="col6">0.069 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.000</oasis:entry>  
         <oasis:entry colname="col7">4321 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 26</oasis:entry>  
         <oasis:entry colname="col8">4288 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 34</oasis:entry>  
         <oasis:entry colname="col9">769 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.2</oasis:entry>  
         <oasis:entry colname="col10">4276 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 34</oasis:entry>  
         <oasis:entry colname="col11">Xi'an U</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">GLD1-stm2-340</oasis:entry>  
         <oasis:entry colname="col2">194 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.3</oasis:entry>  
         <oasis:entry colname="col3">354 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 7</oasis:entry>  
         <oasis:entry colname="col4">612 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 13</oasis:entry>  
         <oasis:entry colname="col5">800 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.9</oasis:entry>  
         <oasis:entry colname="col6">0.068 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.000</oasis:entry>  
         <oasis:entry colname="col7">4172 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 20</oasis:entry>  
         <oasis:entry colname="col8">4142 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 29</oasis:entry>  
         <oasis:entry colname="col9">809 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.9</oasis:entry>  
         <oasis:entry colname="col10">4129 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 29</oasis:entry>  
         <oasis:entry colname="col11">UM</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">GLD1-stm4-10</oasis:entry>  
         <oasis:entry colname="col2">105 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.1</oasis:entry>  
         <oasis:entry colname="col3">283 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 6</oasis:entry>  
         <oasis:entry colname="col4">415 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 11</oasis:entry>  
         <oasis:entry colname="col5">322 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 1.5</oasis:entry>  
         <oasis:entry colname="col6">0.068 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.001</oasis:entry>  
         <oasis:entry colname="col7">5734 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 90</oasis:entry>  
         <oasis:entry colname="col8">5675 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 99</oasis:entry>  
         <oasis:entry colname="col9">327 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 1.6</oasis:entry>  
         <oasis:entry colname="col10">5662 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 99</oasis:entry>  
         <oasis:entry colname="col11">UM</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">GLD1-stm4-24</oasis:entry>  
         <oasis:entry colname="col2">126 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.1</oasis:entry>  
         <oasis:entry colname="col3">983 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 20</oasis:entry>  
         <oasis:entry colname="col4">135 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 3</oasis:entry>  
         <oasis:entry colname="col5">347 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 1.9</oasis:entry>  
         <oasis:entry colname="col6">0.064 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.001</oasis:entry>  
         <oasis:entry colname="col7">5311 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 49</oasis:entry>  
         <oasis:entry colname="col8">5143 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 128</oasis:entry>  
         <oasis:entry colname="col9">352 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 1.9</oasis:entry>  
         <oasis:entry colname="col10">5131 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 128</oasis:entry>  
         <oasis:entry colname="col11">Xi'an U</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">GLD1-stm4-30</oasis:entry>  
         <oasis:entry colname="col2">106 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.1</oasis:entry>  
         <oasis:entry colname="col3">1362 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 27</oasis:entry>  
         <oasis:entry colname="col4">80 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2</oasis:entry>  
         <oasis:entry colname="col5">298 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 1.9</oasis:entry>  
         <oasis:entry colname="col6">0.062 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.001</oasis:entry>  
         <oasis:entry colname="col7">5321 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 57</oasis:entry>  
         <oasis:entry colname="col8">5035 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 210</oasis:entry>  
         <oasis:entry colname="col9">302 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 1.9</oasis:entry>  
         <oasis:entry colname="col10">5023 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 210</oasis:entry>  
         <oasis:entry colname="col11">Xi'an U</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">GLD1-stm4-47</oasis:entry>  
         <oasis:entry colname="col2">96 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.1</oasis:entry>  
         <oasis:entry colname="col3">1104 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 22</oasis:entry>  
         <oasis:entry colname="col4">88 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2</oasis:entry>  
         <oasis:entry colname="col5">290 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 1.9</oasis:entry>  
         <oasis:entry colname="col6">0.062 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.001</oasis:entry>  
         <oasis:entry colname="col7">5341 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 63</oasis:entry>  
         <oasis:entry colname="col8">5082 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 194</oasis:entry>  
         <oasis:entry colname="col9">294 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 1.9</oasis:entry>  
         <oasis:entry colname="col10">5070 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 194</oasis:entry>  
         <oasis:entry colname="col11">Xi'an U</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">GLD1-stm4-70</oasis:entry>  
         <oasis:entry colname="col2">224 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.4</oasis:entry>  
         <oasis:entry colname="col3">749 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 15</oasis:entry>  
         <oasis:entry colname="col4">254 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 5</oasis:entry>  
         <oasis:entry colname="col5">334 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.5</oasis:entry>  
         <oasis:entry colname="col6">0.051 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.000</oasis:entry>  
         <oasis:entry colname="col7">4282 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 27</oasis:entry>  
         <oasis:entry colname="col8">4210 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 58</oasis:entry>  
         <oasis:entry colname="col9">338 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.6</oasis:entry>  
         <oasis:entry colname="col10">4197 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 58</oasis:entry>  
         <oasis:entry colname="col11">UM</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">GLD1-stm4-113</oasis:entry>  
         <oasis:entry colname="col2">155 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.2</oasis:entry>  
         <oasis:entry colname="col3">130 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 3</oasis:entry>  
         <oasis:entry colname="col4">910 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 20</oasis:entry>  
         <oasis:entry colname="col5">363 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.1</oasis:entry>  
         <oasis:entry colname="col6">0.046 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.000</oasis:entry>  
         <oasis:entry colname="col7">3761 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 29</oasis:entry>  
         <oasis:entry colname="col8">3743 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 32</oasis:entry>  
         <oasis:entry colname="col9">367 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.1</oasis:entry>  
         <oasis:entry colname="col10">3730 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 32</oasis:entry>  
         <oasis:entry colname="col11">UM</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">GLD1-stm4-152</oasis:entry>  
         <oasis:entry colname="col2">180 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.3</oasis:entry>  
         <oasis:entry colname="col3">582 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 12</oasis:entry>  
         <oasis:entry colname="col4">226 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 5</oasis:entry>  
         <oasis:entry colname="col5">373 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.0</oasis:entry>  
         <oasis:entry colname="col6">0.045 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.000</oasis:entry>  
         <oasis:entry colname="col7">3590 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 25</oasis:entry>  
         <oasis:entry colname="col8">3521 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 54</oasis:entry>  
         <oasis:entry colname="col9">376 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 2.0</oasis:entry>  
         <oasis:entry colname="col10">3508 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 54</oasis:entry>  
         <oasis:entry colname="col11">UM</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">GLD1-stm4-195</oasis:entry>  
         <oasis:entry colname="col2">175 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.1</oasis:entry>  
         <oasis:entry colname="col3">929 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 19</oasis:entry>  
         <oasis:entry colname="col4">131 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 4</oasis:entry>  
         <oasis:entry colname="col5">369 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 1.7</oasis:entry>  
         <oasis:entry colname="col6">0.042 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 0.001</oasis:entry>  
         <oasis:entry colname="col7">3403 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 74</oasis:entry>  
         <oasis:entry colname="col8">3290 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 108</oasis:entry>  
         <oasis:entry colname="col9">372 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 1.8</oasis:entry>  
         <oasis:entry colname="col10">3277 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 108</oasis:entry>  
         <oasis:entry colname="col11">UM</oasis:entry>
       </oasis:row>
     </oasis:tbody>
   </oasis:tgroup><?xmltex \end{scaleboxenv}?></oasis:table></table-wrap>

      <p>U/Th dating – Seventeen powder samples were drilled from the two stalagmites
and dated by a multi-collector inductively coupled plasma mass spectrometer.
The procedure to separate uranium and thorium was referred to in
Edwards et al. (1987) and Cheng et al. (2013). The dating work was carried out at the University of Minnesota (USA)
and the Xi'an Jiaotong University (China). One dating from the base part of
stalagmite GLD1-stm2, for the exploration of preliminary age frame, was done
at the Laboratoire des Sciences du Climat et de l'Environnement (LSCE,
France). The U/Th dates were reported in years before 2000 AD. (Fig. 2,
Table 1). The age model for both stalagmites was developed using the StalAge
program (Scholz and Hoffmann, 2011) where a linear interpolation
between depth and age is made through each progressive triplet of adjacent
U/Th dates (Fig. 3). This procedure provides a quantitative estimate of age
uncertainty continuously along the record despite having analytical
constraints only at locations where the U/Th dates exist. Stalagmite growth
rates were calculated based on the StalAge age model (Fig. 4).</p>

      <?xmltex \floatpos{t}?><fig id="Ch1.F3"><caption><p>Age models of stalagmites GLD1-stm2 and GLD1-stm4 from the
Gueldaman GLD1 Cave. The age models were calculated using the StalAge
program (Scholz and Hoffmann, 2011). Note that the U/Th date of
sample GLD1-stm4-47 was detected as a major outlier and not used in the
final age model of stalagmite GLD1-stm4. The 2<inline-formula><mml:math display="inline"><mml:mi mathvariant="italic">σ</mml:mi></mml:math></inline-formula> analytical
uncertainty of each U/Th date (dot) is represented by the error bars,
whereas the 95 % uncertainty assessed from the model simulation is
represented by thin curves.</p></caption>
          <?xmltex \igopts{width=236.157874pt}?><graphic xlink:href="https://cp.copernicus.org/articles/12/1/2016/cp-12-1-2016-f03.pdf"/>

        </fig>

      <p>Stable isotopes – Four hundred and thirty samples were drilled every 1 to 2 mm along the stalagmite central growth axis (Fig. 2). Stable carbon and
oxygen isotopes compositions of both stalagmites and modern calcites were
measured using a VG-OPTIMA mass spectrometer at the LSCE. For each analysis,
60 to 80 <inline-formula><mml:math display="inline"><mml:mi mathvariant="normal">µ</mml:mi></mml:math></inline-formula>g calcite powder is reacted with phosphoric acid at 90 <inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mo>∘</mml:mo></mml:msup></mml:math></inline-formula>C, and the resultant CO<inline-formula><mml:math display="inline"><mml:msub><mml:mi/><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:math></inline-formula> is measured relative to a
reference gas that has been calibrated against a series of isotopic
standards. Duplicates were run every 10 to 20 samples to check
replicability. All values are reported in ‰ relative to
the V-PDB (Fig. 4). The error is 0.08 ‰ for <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O and 0.05 ‰ for <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>13</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>C.</p>

<?xmltex \floatpos{t}?><table-wrap id="Ch1.T2" specific-use="star"><caption><p>Radiocarbon dates from AMS analyses of charcoals from excavation
sector S2 inside the Gueldaman GLD1 Cave. <inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mo>*</mml:mo></mml:msup></mml:math></inline-formula> Kherbouche
et al. (2014). Ages are reported in years before 2000 AD.</p></caption><oasis:table frame="topbot"><oasis:tgroup cols="8">
     <oasis:colspec colnum="1" colname="col1" align="left"/>
     <oasis:colspec colnum="2" colname="col2" align="left"/>
     <oasis:colspec colnum="3" colname="col3" align="left"/>
     <oasis:colspec colnum="4" colname="col4" align="left"/>
     <oasis:colspec colnum="5" colname="col5" align="right"/>
     <oasis:colspec colnum="6" colname="col6" align="right"/>
     <oasis:colspec colnum="7" colname="col7" align="right"/>
     <oasis:colspec colnum="8" colname="col8" align="left"/>
     <oasis:thead>
       <oasis:row>  
         <oasis:entry colname="col1">Depth Z</oasis:entry>  
         <oasis:entry colname="col2">Square</oasis:entry>  
         <oasis:entry colname="col3">Lab no.</oasis:entry>  
         <oasis:entry colname="col4">Material</oasis:entry>  
         <oasis:entry colname="col5">14C Age</oasis:entry>  
         <oasis:entry colname="col6">Median age</oasis:entry>  
         <oasis:entry colname="col7">Cal. interval</oasis:entry>  
         <oasis:entry colname="col8">Note</oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">  
         <oasis:entry colname="col1">(cm)</oasis:entry>  
         <oasis:entry colname="col2"/>  
         <oasis:entry colname="col3">(SacA#)</oasis:entry>  
         <oasis:entry colname="col4"/>  
         <oasis:entry colname="col5">(<inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula>2<inline-formula><mml:math display="inline"><mml:mi mathvariant="italic">σ</mml:mi></mml:math></inline-formula>; yr)</oasis:entry>  
         <oasis:entry colname="col6">(yr)</oasis:entry>  
         <oasis:entry colname="col7">(2<inline-formula><mml:math display="inline"><mml:mi mathvariant="italic">σ</mml:mi></mml:math></inline-formula>; yr)</oasis:entry>  
         <oasis:entry colname="col8"/>
       </oasis:row>
     </oasis:thead>
     <oasis:tbody>
       <oasis:row>  
         <oasis:entry colname="col1">60</oasis:entry>  
         <oasis:entry colname="col2">M48</oasis:entry>  
         <oasis:entry colname="col3">39408</oasis:entry>  
         <oasis:entry colname="col4">Charcoal</oasis:entry>  
         <oasis:entry colname="col5">1600 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 30</oasis:entry>  
         <oasis:entry colname="col6">1482</oasis:entry>  
         <oasis:entry colname="col7">1385–1604</oasis:entry>  
         <oasis:entry colname="col8">This study</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">65</oasis:entry>  
         <oasis:entry colname="col2">N48</oasis:entry>  
         <oasis:entry colname="col3">29731</oasis:entry>  
         <oasis:entry colname="col4">Charcoal</oasis:entry>  
         <oasis:entry colname="col5">1610 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 25</oasis:entry>  
         <oasis:entry colname="col6">1484</oasis:entry>  
         <oasis:entry colname="col7">1415–1547</oasis:entry>  
         <oasis:entry colname="col8"><inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mo>*</mml:mo></mml:msup></mml:math></inline-formula></oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">84</oasis:entry>  
         <oasis:entry colname="col2">N48</oasis:entry>  
         <oasis:entry colname="col3">39410</oasis:entry>  
         <oasis:entry colname="col4">Charcoal</oasis:entry>  
         <oasis:entry colname="col5">4020 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 30</oasis:entry>  
         <oasis:entry colname="col6">4495</oasis:entry>  
         <oasis:entry colname="col7">4411–4785</oasis:entry>  
         <oasis:entry colname="col8">This study</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">86</oasis:entry>  
         <oasis:entry colname="col2">N48</oasis:entry>  
         <oasis:entry colname="col3">39411</oasis:entry>  
         <oasis:entry colname="col4">Charcoal</oasis:entry>  
         <oasis:entry colname="col5">3975 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 30</oasis:entry>  
         <oasis:entry colname="col6">4416</oasis:entry>  
         <oasis:entry colname="col7">4290–4569</oasis:entry>  
         <oasis:entry colname="col8">This study</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">91</oasis:entry>  
         <oasis:entry colname="col2">M48</oasis:entry>  
         <oasis:entry colname="col3">39409</oasis:entry>  
         <oasis:entry colname="col4">Charcoal</oasis:entry>  
         <oasis:entry colname="col5">3945 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 30</oasis:entry>  
         <oasis:entry colname="col6">4403</oasis:entry>  
         <oasis:entry colname="col7">4244–4522</oasis:entry>  
         <oasis:entry colname="col8">This study</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">108</oasis:entry>  
         <oasis:entry colname="col2">N47</oasis:entry>  
         <oasis:entry colname="col3">36982</oasis:entry>  
         <oasis:entry colname="col4">Charcoal</oasis:entry>  
         <oasis:entry colname="col5">4355 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 30</oasis:entry>  
         <oasis:entry colname="col6">4918</oasis:entry>  
         <oasis:entry colname="col7">4851–5032</oasis:entry>  
         <oasis:entry colname="col8">This study</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">124</oasis:entry>  
         <oasis:entry colname="col2">L48</oasis:entry>  
         <oasis:entry colname="col3">23883</oasis:entry>  
         <oasis:entry colname="col4">Charcoal</oasis:entry>  
         <oasis:entry colname="col5">5250 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 35</oasis:entry>  
         <oasis:entry colname="col6">6003</oasis:entry>  
         <oasis:entry colname="col7">5924–6178</oasis:entry>  
         <oasis:entry colname="col8"><inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mo>*</mml:mo></mml:msup></mml:math></inline-formula></oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">132</oasis:entry>  
         <oasis:entry colname="col2">L48</oasis:entry>  
         <oasis:entry colname="col3">23884</oasis:entry>  
         <oasis:entry colname="col4">Charcoal</oasis:entry>  
         <oasis:entry colname="col5">4260 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 30</oasis:entry>  
         <oasis:entry colname="col6">6025</oasis:entry>  
         <oasis:entry colname="col7">5933–6178</oasis:entry>  
         <oasis:entry colname="col8"><inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mo>*</mml:mo></mml:msup></mml:math></inline-formula></oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">147</oasis:entry>  
         <oasis:entry colname="col2">M47</oasis:entry>  
         <oasis:entry colname="col3">36981</oasis:entry>  
         <oasis:entry colname="col4">Charcoal</oasis:entry>  
         <oasis:entry colname="col5">6120 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 35</oasis:entry>  
         <oasis:entry colname="col6">7002</oasis:entry>  
         <oasis:entry colname="col7">6907–7157</oasis:entry>  
         <oasis:entry colname="col8">This study</oasis:entry>
       </oasis:row>
     </oasis:tbody>
   </oasis:tgroup></oasis:table></table-wrap>

</sec>
<sec id="Ch1.S2.SS3">
  <title>Archaeological analyses</title>
      <p>Archaeological excavations were carried out at two sectors S2 and S3 inside
the Gueldaman GLD1 Cave during the 2010–2012 campaign (Fig. 1). This work
consisted mainly in collecting, identifying, and referencing the
archaeological materials found in stratigraphic layers (refer to
Kherbouche et al., 2014 for details). More than 7000
anthropogenic remains were collected, consisting mainly of faunal remains,
ceramic, and lithic and bone tools. Besides, all sediments were water
screened through 1.5 and 4 mm mesh and subjected systematically to
flotation with collection in a 250 <inline-formula><mml:math display="inline"><mml:mi mathvariant="normal">µ</mml:mi></mml:math></inline-formula>m mesh yielding a huge amount of
charcoals. Initial radiocarbon dating of upper stratigraphic sequences from
S2 and S3 gave the median ages ranging from ca. 6800 to 1500 cal yr BP
(Kherbouche et al., 2014). In order to refine the
chronology of these deposits, in this study, six new charcoal samples were
collected from the key archaeological layers in excavation area MN 47/48 of
S2. These samples were dated using the AMS radiocarbon method at the CEA
Saclay (France). Detailed procedures of the chemical preparation and the
dating in the lab were referred to Cottereau et al. (2007).
The dates were calibrated using the IntCal13 data set
(Reimer et al., 2013)
and reported in years before 2000 AD (Table 2).</p>
</sec>
</sec>
<sec id="Ch1.S3">
  <title>Results</title>
<sec id="Ch1.S3.SS1">
  <title>Stalagmites U/Th dates and growth rates</title>
      <p>The uranium contents of measured stalagmites samples are relatively high
ranging from 95 to 225 ppb (Table 1). The 2 sigma U/Th errors vary from 20
to 210 years with an average of 77 years (1.6 %). The U/Th date (5070 <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 194 yr BP) of sample GLD1-stm4-47 was detected as a major outlier by
the StalAge program, thus, it was not used to calculate the final age model.
Calculated StalAge age model for stalagmite GLD1-stm4 shows large errors up
to 500 years during ca. 4900–4200 yr BP (Fig. 3). This may partly be due to
relatively large errors of adjacent U-series dates and/or impropriate
hypotheses applied in the algorithm. Based on individual StalAge age model,
stalagmite GLD1-stm2 grew from ca. 6200 to 4000 yr BP (4100 yr BP if
excluding the top 5 mm), whereas stalagmite GLD1-stm4 grew from ca. 5800 to
3200 yr BP (Fig. 3).</p>

      <?xmltex \floatpos{t}?><fig id="Ch1.F4"><caption><p>The <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O, <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>13</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>C and growth rate of
stalagmites GLD1-stm2 and GLD1-stm4 from the Gueldaman GLD1 Cave. U/Th dates
with 2<inline-formula><mml:math display="inline"><mml:mi mathvariant="italic">σ</mml:mi></mml:math></inline-formula> errors are presented at the top. The isotopic ranges of
modern calcites are also shown on the left (rectangles). Growth rates are
calculated from the StalAge age model. Note that the extraordinarily high
growth at ca. 4600 yr BP in stalagmite GLD1-stm2 and ca. 3800 yr BP in
stalagmite GLD1-stm4 are likely attributed to artificial simulations by the
StalAge program and thus are not fully discussed in terms of climate in the
text.</p></caption>
          <?xmltex \igopts{width=241.848425pt}?><graphic xlink:href="https://cp.copernicus.org/articles/12/1/2016/cp-12-1-2016-f04.pdf"/>

        </fig>

      <p>Stalagmite GLD1-stm2 shows high and variable growth rates (mean <inline-formula><mml:math display="inline"><mml:mo>=</mml:mo></mml:math></inline-formula> 180 <inline-formula><mml:math display="inline"><mml:mi mathvariant="normal">µ</mml:mi></mml:math></inline-formula>m yr<inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup><mml:mo>)</mml:mo></mml:mrow></mml:math></inline-formula> with higher values <inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 400 <inline-formula><mml:math display="inline"><mml:mi mathvariant="normal">µ</mml:mi></mml:math></inline-formula>m yr<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> at ca. 4800–4600 yr BP; whereas stalagmite
GLD1-stm4 shows relatively lower and less variable growth rates (mean <inline-formula><mml:math display="inline"><mml:mo>=</mml:mo></mml:math></inline-formula> 120 <inline-formula><mml:math display="inline"><mml:mi mathvariant="normal">µ</mml:mi></mml:math></inline-formula>m yr<inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup><mml:mo>)</mml:mo></mml:mrow></mml:math></inline-formula> with higher values <inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 200 <inline-formula><mml:math display="inline"><mml:mi mathvariant="normal">µ</mml:mi></mml:math></inline-formula>m yr<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> at ca. 3800–3200 yr BP (Fig. 4).</p>
</sec>
<sec id="Ch1.S3.SS2">
  <title>Stable carbon and oxygen isotopes</title>
      <p>The isotopic compositions of modern calcite vary from
<inline-formula><mml:math display="inline"><mml:mo>-</mml:mo></mml:math></inline-formula>5.40 to <inline-formula><mml:math display="inline"><mml:mo>-</mml:mo></mml:math></inline-formula>5.56 ‰ for the <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O and from <inline-formula><mml:math display="inline"><mml:mo>-</mml:mo></mml:math></inline-formula>8.43 to <inline-formula><mml:math display="inline"><mml:mo>-</mml:mo></mml:math></inline-formula>10.34 ‰
for the <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>13</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>C. The <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O values from stalagmites
GLD1-stm2 and GLD1-stm4 range from <inline-formula><mml:math display="inline"><mml:mo>-</mml:mo></mml:math></inline-formula>7.8 to
<inline-formula><mml:math display="inline"><mml:mo>-</mml:mo></mml:math></inline-formula>2.8 ‰ and from <inline-formula><mml:math display="inline"><mml:mo>-</mml:mo></mml:math></inline-formula>7.3 to
<inline-formula><mml:math display="inline"><mml:mo>-</mml:mo></mml:math></inline-formula>0.6 ‰, respectively; the <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>13</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>C values range
from <inline-formula><mml:math display="inline"><mml:mo>-</mml:mo></mml:math></inline-formula>10.6 to <inline-formula><mml:math display="inline"><mml:mo>-</mml:mo></mml:math></inline-formula>3.3 ‰ and from
<inline-formula><mml:math display="inline"><mml:mo>-</mml:mo></mml:math></inline-formula>11.9 to <inline-formula><mml:math display="inline"><mml:mo>-</mml:mo></mml:math></inline-formula>0.6 ‰, respectively. The
<inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O and <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>13</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>C significantly correlate in both
stalagmites: <inline-formula><mml:math display="inline"><mml:mrow><mml:mi>R</mml:mi><mml:mo>=</mml:mo></mml:mrow></mml:math></inline-formula> 0.87, <inline-formula><mml:math display="inline"><mml:mi>P</mml:mi></mml:math></inline-formula> &lt; 0.01 for GLD1-stm2 and <inline-formula><mml:math display="inline"><mml:mrow><mml:mi>R</mml:mi><mml:mo>=</mml:mo></mml:mrow></mml:math></inline-formula> 0.92, <inline-formula><mml:math display="inline"><mml:mrow><mml:mi>P</mml:mi><mml:mi mathvariant="italic">&lt;</mml:mi></mml:mrow></mml:math></inline-formula> 0.01 for GLD1-stm4. Albeit the different amplitudes, the isotopic
profiles of the two stalagmites show similarities during their common
development of ca.  5800–4000 yr BP: relatively elevated isotope values are
found at ca. 5700–5400, ca. 5200, and ca. 4500 yr BP (Fig. 4).
Two other isotopically enriched periods in stalagmite GLD-stm2 are found at
ca. 6200 and ca. 4900 yr BP (Fig. 4). There is a common isotopic
enrichment trend since ca. 4800–4600 yr BP (depending on individual age
model; abrupt in stalagmite GLD1-stm4 whereas more gradual in GLD1-stm2).
Toward the end of this trend, the most prominent anomaly occurs in
stalagmite GLD1-stm4 at ca. 4400–3800 yr BP during which the <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O values are enriched by approximately 3.5 ‰
relative to the background values of that time as well as the modern calcite
values for a period of <inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 500 years (Fig. 4). Specifically
within this anomalous period, there is a mild isotopic depletion at ca.
4200–4000 yr BP, blanketed by two significant enrichments at ca. 4400–4200 yr BP and ca. 4000–3800 yr BP (Fig. 4). The last part, ca. 3800–3200 yr BP,
of GLD1-stm4, is characterized by a <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O recovery of about
<inline-formula><mml:math display="inline"><mml:mo>-</mml:mo></mml:math></inline-formula>3 ‰, synchronous with increased growth rates (Fig. 4).</p>
</sec>
<sec id="Ch1.S3.SS3">
  <title>Anthropogenic deposits and 14C dates</title>
      <p>Excavations inside Gueldaman GLD1 Cave revealed a large variety of
archeological remains and, among them, are numerous precious macro charcoals
that have been used for establishing the chronology of the deposits. In the
<inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 7 m<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">2</mml:mn></mml:msup></mml:math></inline-formula> total excavated area of S2, more than 7000
archaeological objects were identified and consisted of faunal remains,
lithic artifacts and grinding equipment, potteries, bone tools, ornaments,
and ochre. In addition, a fragment of a human mandible and two isolated
teeth were found during the excavation 2010–2012 in Gueldaman GLD1 Cave
(Kherbouche et al., 2014). These deposits belong mainly
to the Neolithic; only the top level of the sequence contains potsherds of
the historic period. In the lower Neolithic levels, identified domestic
species (i.e. sheep and goats) represented <inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 25 % of total
faunal assemblages (N <inline-formula><mml:math display="inline"><mml:mo>=</mml:mo></mml:math></inline-formula> 2378) suggesting a partly pastoral based economy.
The potteries (N <inline-formula><mml:math display="inline"><mml:mo>=</mml:mo></mml:math></inline-formula> 825) are mostly related to cooking vessels of 25-40 cm
rim diameter. Hundreds of black charcoals (&gt; 1 cm) were found and
always associated with ceramic concentrations suggesting evidence of cooking
activities.</p>
      <p>Determined radiocarbon dates give the median ages of the sequence between
7002 and 1482 cal yr BP, with their 2<inline-formula><mml:math display="inline"><mml:mi mathvariant="italic">σ</mml:mi></mml:math></inline-formula>-error intervals varying from
132 to 374 years (Table 2). These dates provide a first chronology for the
archaeological deposits excavated from sector S2 (Fig. 6; Kherbouche et al., 2014): anthropogenic remains (i.e.
charcoals, bones, teeth and potteries) are numerous during ca. 7002–6003 cal yr BP (depths of <inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 150-120 cm), decreased at ca. 6003–4918 cal yr BP
(depths of <inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 120–105 cm), most abundant in the period of
ca. 4918–4403 cal yr BP (depths of 105–75 cm), significantly diminished
during the long interval of ca. 4403–1484 cal yr BP (depths of 75–60 cm),
and finally, numerous again from ca. 1484 cal yr BP (depths of
<inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 60–50 cm). With an overall decrease in archeological
materials, there are two levels clearly marked by their poverty in charcoal
and pottery during the periods of ca. 6003–4918 and ca. 4403–1484 cal yr BP (Fig. 6).</p>

      <?xmltex \floatpos{t}?><fig id="Ch1.F5"><caption><p>Comparison of high-resolution Mid-Holocene stalagmite <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O records across the Mediterranean basin. From the top to bottom are
stalagmite records from the Gueldaman GLD1 Cave in Northern Algeria of the
Western-Mediterranean basin (this study), the Corchia Cave
(Zanchetta et al., 2014) and the Renella Cave
(Drysdale et al., 2006) in Central Italy of the Central
Mediterranean basin, and the Soreq Cave (Bar-Matthews and Ayalon, 2011;
Kaufman et al., 1998) in Israel of Eastern-Mediterranean basin. Different
stalagmites from each area are represented in distinct colors. U/Th dates
with 2<inline-formula><mml:math display="inline"><mml:mi mathvariant="italic">σ</mml:mi></mml:math></inline-formula> errors are shown at the top of each curve. Ages are reported
in years before 2000 AD.</p></caption>
          <?xmltex \igopts{width=236.157874pt}?><graphic xlink:href="https://cp.copernicus.org/articles/12/1/2016/cp-12-1-2016-f05.pdf"/>

        </fig>

      <?xmltex \floatpos{t}?><fig id="Ch1.F6" specific-use="star"><caption><p>Radiocarbon dating of anthropogenic deposits layers in excavation
sector S2 inside the Gueldaman GLD1 Cave. From the left to right are
<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>14</mml:mn></mml:msup></mml:math></inline-formula>C dates of charcoal samples, anthropogenic deposit distribution, and
a photo at depth across <inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 75–88 cm showing a transition of
layer from rich to rare anthropogenic deposits. The gray color highlights
two phases with diminished anthropogenic remains (especially pottery and
charcoal) at ca. 4403–1484 cal yr BP (depths of <inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 75–60 cm)
and ca. 6003–4918 cal yr BP (depths of <inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 120–105 cm).</p></caption>
          <?xmltex \igopts{width=398.338583pt}?><graphic xlink:href="https://cp.copernicus.org/articles/12/1/2016/cp-12-1-2016-f06.pdf"/>

        </fig>

</sec>
</sec>
<sec id="Ch1.S4">
  <title>Discussions</title>
<sec id="Ch1.S4.SS1">
  <title>Climatic significance of stalagmites proxies</title>
      <p>Under isotopic equilibrium precipitation, stalagmite calcite <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O depends mainly on the temperature of calcite-water fractionation
and on the <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O of drip water that is controlled by local
rainfall <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O (Genty et al., 2014; Lachniet, 2009).
Observations from the IAEA network show that the rainfall <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O
at many Mediterranean stations (including one in Algiers, Algeria) are
partly controlled by the amount of rainfall (IAEA, 2005), which is
coherent with previous studies that stalagmite <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O records
from the Mediterranean regions were interpreted to primarily reflect changes
in rainfall amount (inversely correlated; e.g., Bar-Matthews and Ayalon,
2011; Bar-Matthews et al., 2003, 1997;  Drysdalea et al., 2004, 2006; Zanchetta et al., 2014). Therefore, higher
stalagmite <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O values are expected during periods of decrease
in rainfall (drier). The temperature effect on calcite-water fractionation,
on the other hand, is partly counteracted by the condensation temperature
effect on rainfall <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O (Drysdale et al., 2006).
We notice that this interpretation may particularly hold true for the
present study because the regional temperature seems to have been relatively
constant since the Mid-Holocene (Martrat et al., 2004).</p>
      <p>Stalagmite <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>13</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>C variations have several potential causes, the
most likely, considering the studied location and time interval, being
variations in soil CO<inline-formula><mml:math display="inline"><mml:msub><mml:mi/><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:math></inline-formula> input and water flow rate
(Genty et al., 2001a; McDermott, 2004). Despite the fact
that soil biogenic CO<inline-formula><mml:math display="inline"><mml:msub><mml:mi/><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:math></inline-formula> production varies according to both temperature
and moisture level, moisture is likely to be a major controlling factor due
to low temperature variability of the considered time interval and limited
water availability under semi-arid climates. Moisture also influences water
flow rate and thus the CO<inline-formula><mml:math display="inline"><mml:msub><mml:mi/><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:math></inline-formula> loss during the prior calcite precipitation
(Fairchild et al., 2000). Longer residence time due to
lower flow rate, under diminished moisture condition, enhances CO<inline-formula><mml:math display="inline"><mml:msub><mml:mi/><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:math></inline-formula> loss
and preferential <inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>12</mml:mn></mml:msup></mml:math></inline-formula>C removal from solution causing enrichments in
stalagmite <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>13</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>C (Johnson et al., 2006; Mickler et al.,
2004). Eventually, atmospheric rainfall largely determines the moisture
level and controls the <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>13</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>C variations. Therefore, the
significant correlation of stalagmite <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>13</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>C and <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O may suggest a common control of rainfall.</p>
      <p>The rainfall signal imprinted in the Gueldaman stalagmite isotopes
(inversely correlated) is probably amplified by two other processes –
evaporation and disequilibrium isotopic fractionation (Mickler et al.,
2006) that are very likely to have occurred at the Gueldaman GLD1 Cave due
to its large entrance. Longer residence time during drier (lower rainfall)
periods would allow extended evaporative and non-equilibrium fractionations,
which drives stalagmite isotopes further higher (Mickler et
al., 2004). It has recently been observed that evaporation in semi-arid caves
could cause 4–5 ‰ <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O enrichments of a wide
range of drip waters (Cuthbert et al., 2014). The Hendy test
(i.e. studying the isotopic variation in contemporaneous laminae; Hendy, 1971) carried out at three different depths in stalagmite
GLD1-stm2 show that the <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O and <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>13</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>C
significantly correlate and simultaneously increase by up to <inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 1 ‰ from the apex to the edge probably due to the
presence of progressive kinetic fractionations when feeding waters flow
outwards from the apex, suggesting that the stalagmite formed out of
isotopic equilibrium (see the Supplement). These two processes may partly account
for the significant correlation of the <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O and <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>13</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>C profiles in both stalagmites (<inline-formula><mml:math display="inline"><mml:mrow><mml:mi>R</mml:mi><mml:mo>=</mml:mo></mml:mrow></mml:math></inline-formula> 0.87 for GLD1-stm2; <inline-formula><mml:math display="inline"><mml:mrow><mml:mi>R</mml:mi><mml:mo>=</mml:mo></mml:mrow></mml:math></inline-formula> 0.92 for
GLD1-stm4). Comparisons of two stalagmites show different amplitudes in
their isotopic profiles. This might be due to the following: (1) having been fed by
reservoirs that smooth rainfall signal differently, and (2) having been
suffered from variable evaporative and kinetic enrichments associated with
different recharge features. Despite this discrepancy the isotopic profiles
of two stalagmites broadly show similar patterns. Consequently, synchronous
<inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O and <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>13</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>C variations in the two stalagmites
can be interpreted in terms of humidity change. A prolonged severe drought
is inferred from the most elevated isotopes values during ca. 4400–3800 yr BP together with drier periods from higher values at ca. 6200, ca.
5700–5400, ca. 5200, and ca. 4500 yr BP (Fig. 4), while wetter
periods are suggested from depleted isotopes at ca. 4600–5100 and ca.
5300 yr BP.</p>
      <p>Moreover, stalagmite growth phase has long been regarded as an environmental
indicator (e.g., Genty et al., 2001b; Stoll et al., 2013) and could be
used to complement and/or test the climatic interpretation from isotope
records. Water availability is an essential factor for stalagmite growth in
arid-to-semi-arid areas, as shown by Vaks et al. (2013) who correlated growth periods well with periods of effective rainfall
regimes. The growth cessation of stalagmite GLD1-stm2 at ca. 4000 yr BP may
suggest a phase of increased aridity, which is consistent with the dryness
inferred from elevated isotopes (Fig. 4). However, the continuous growth of
stalagmite GLD1-stm4 at that time suggests that the growth cessation might
also have been caused by shifts in dripping position under deteriorating
climates (Fairchild and Baker, 2012). Moreover, fast stalagmite
growths together with wide diameters usually are associated with high drip
rates suggesting humid conditions. A wet period ca. 4800–4600 yr BP is
indicated by the high growth rates of stalagmite GLD1-stm2, which is broadly
in line with the humid period inferred from depleted isotopes (Fig. 4).
Another wetter period ca. 3800–3200 yr BP is suggested by faster growths and
relatively depleted isotopes of stalagmite GLD1-stm4 (Fig. 4). The
discrepancy in the growth rate profiles of the two stalagmites is possibly
due in part to (1) the lack of substantial U/Th dating especially for
stalagmite GLD1-stm4 between 5023 and 4197 yr BP, and/or (2) site-specific
processes due to different reservoirs play a key role in controlling
stalagmite growth.</p>
      <p>Finally, the modern calcite isotopic values fall in the range of two
stalagmite records (Fig. 4), which suggests that the current humidity
condition in Northern Algeria seems to be within the range of its Mid-Holocene
variability. The average <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O value during ca. 4400–3800 yr BP
in stalagmite GLD1-stm4 is more enriched by about 3.5 ‰
relative to the modern values (Fig. 4), therefore, the 4400–3800 yr BP
climate anomaly may be considered analogous to end numbers of the most
recent and ongoing drying.</p>
</sec>
<sec id="Ch1.S4.SS2">
  <title>Mid-Holocene climate anomalies across the Mediterranean basin and their
dynamic implications</title>
      <p>High-resolution absolute-dated Mid-Holocene climate records are rare in the
Western-Mediterranean basin, however, there are number of paleoenvironment studies
using sediment cores that document large oscillations in vegetation ecology
and provide clues of climate change during the Mid-Holocene. A drying trend
from ca. 4600 cal yr BP onwards was inferred, based on the decreasing pollen
ratio of deciduous broad-leaf vs. evergreen sclerophyllous taxa at Capestang in
the Mediterranean, Southern France (Jalut et al., 2000). At a nearby
site in Northeastern Spain, the most arid Mid-Holocene condition at ca. 4800–4000 cal yr BP was interpreted using maximum salinity values, more positive organic
carbon isotope values, and decreased algal productivity in Estanya Lake
(Morrellon et al., 2009). In the Mediterranean, Southern Spain,
desertification phases at ca. 5200 and ca. 4100 cal yr BP were
inferred using multiple paleoecological indicators including pollen,
microcharcoal, spores of terrestrial plants, fungi, non-siliceous algae, and
other microfossils in Siles Lake (Carrión, 2002). Similar
environment changes have also been observed in the Central Mediterranean
basin, as shown by a synthesis study of lacustrine palynological data which
suggested a dryness peaking at ca.  4000 cal yr BP (Sadori et al.,
2011). Evaluated carbonate oxygen isotopes from Lake Shkodra were argued to
be an indicator of dryness at ca. 4100–4000 cal yr BP
(Zanchetta et al., 2012b). Increasing aridity at ca.
5000–4000 cal yr BP was suggested to explain the increases in non-tree
pollen percentage and micro charcoal content in the Lago di Pergusa Lake,
Sicily (Roberts et al., 2011; Sadori and Giardini, 2007; Sadori and
Narcisi, 2001). Closer to our site, a study at Preola Lake, Eastern Sicily,
documented a significant low stand lake level at ca. 4500–4000 cal yr BP
suggesting extreme aridity (Magny et al., 2011). Moreover,
six tephra layers were carefully studied to correlate climate anomalies at
ca. 4500–3800 cal yr BP from different archives in the central Mediterranean
(Zanchetta et al., 2012a). In the east, Finné et al. (2011) reviewed the climate history of the Eastern Mediterranean over the last
6000 years and concluded with much evidence of drying conditions at ca.
4600–3800 yr BP. Although the sampling and dating resolutions in most of the
above studies are low, they are in good agreement with the present study
regarding the 5200 yr BP dry event, the drying trend from 4800–4600 yr BP
onward, and the 4400–3800 yr BP drought.</p>

<?xmltex \floatpos{t}?><table-wrap id="Ch1.T3" specific-use="star"><caption><p>Summary of the features of climate and human activity in different
climate periods and occupation phases.</p></caption><oasis:table frame="topbot"><oasis:tgroup cols="6">
     <oasis:colspec colnum="1" colname="col1" align="left"/>
     <oasis:colspec colnum="2" colname="col2" align="right"/>
     <oasis:colspec colnum="3" colname="col3" align="left"/>
     <oasis:colspec colnum="4" colname="col4" align="right"/>
     <oasis:colspec colnum="5" colname="col5" align="right"/>
     <oasis:colspec colnum="6" colname="col6" align="left"/>
     <oasis:thead>
       <oasis:row>  
         <oasis:entry colname="col1">Climate</oasis:entry>  
         <oasis:entry colname="col2">Age (<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>230</mml:mn></mml:msup></mml:math></inline-formula>Th yr)</oasis:entry>  
         <oasis:entry colname="col3">Climate condition</oasis:entry>  
         <oasis:entry colname="col4">Occupation</oasis:entry>  
         <oasis:entry colname="col5">Age (<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>14</mml:mn></mml:msup></mml:math></inline-formula>C cal yr)</oasis:entry>  
         <oasis:entry colname="col6">Human activity</oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">  
         <oasis:entry colname="col1">period</oasis:entry>  
         <oasis:entry colname="col2"/>  
         <oasis:entry colname="col3"/>  
         <oasis:entry colname="col4">phase</oasis:entry>  
         <oasis:entry colname="col5"/>  
         <oasis:entry colname="col6"/>
       </oasis:row>
     </oasis:thead>
     <oasis:tbody>
       <oasis:row>  
         <oasis:entry colname="col1">–</oasis:entry>  
         <oasis:entry colname="col2">–</oasis:entry>  
         <oasis:entry colname="col3">–</oasis:entry>  
         <oasis:entry colname="col4">0</oasis:entry>  
         <oasis:entry colname="col5"><inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 7002–6003</oasis:entry>  
         <oasis:entry colname="col6">Permanent and intensive</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1"/>  
         <oasis:entry colname="col2"/>  
         <oasis:entry colname="col3"/>  
         <oasis:entry colname="col4"/>  
         <oasis:entry colname="col5"/>  
         <oasis:entry colname="col6">occupation</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">1</oasis:entry>  
         <oasis:entry colname="col2"><inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 6200–5100</oasis:entry>  
         <oasis:entry colname="col3">Wet &amp; oscillatory</oasis:entry>  
         <oasis:entry colname="col4">1</oasis:entry>  
         <oasis:entry colname="col5"><inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 6003–4918</oasis:entry>  
         <oasis:entry colname="col6">Permanent but less intensive</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1"/>  
         <oasis:entry colname="col2"/>  
         <oasis:entry colname="col3"/>  
         <oasis:entry colname="col4"/>  
         <oasis:entry colname="col5"/>  
         <oasis:entry colname="col6">occupation</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">2</oasis:entry>  
         <oasis:entry colname="col2"><inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 5100–4400</oasis:entry>  
         <oasis:entry colname="col3">Wettest, ending with a dramatic</oasis:entry>  
         <oasis:entry colname="col4">2</oasis:entry>  
         <oasis:entry colname="col5"><inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 4918–4403</oasis:entry>  
         <oasis:entry colname="col6">Permanent and most intensive</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1"/>  
         <oasis:entry colname="col2"/>  
         <oasis:entry colname="col3">shift in the last <inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 200 years</oasis:entry>  
         <oasis:entry colname="col4"/>  
         <oasis:entry colname="col5"/>  
         <oasis:entry colname="col6">occupation</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">3</oasis:entry>  
         <oasis:entry colname="col2"><inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 4400–3800</oasis:entry>  
         <oasis:entry colname="col3">Extremely dry</oasis:entry>  
         <oasis:entry colname="col4">3</oasis:entry>  
         <oasis:entry colname="col5"><inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 4403–1484</oasis:entry>  
         <oasis:entry colname="col6">Abandonment of the</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1"/>  
         <oasis:entry colname="col2"/>  
         <oasis:entry colname="col3"/>  
         <oasis:entry colname="col4"/>  
         <oasis:entry colname="col5"/>  
         <oasis:entry colname="col6">cave/occasional visit</oasis:entry>
       </oasis:row>
       <oasis:row>  
         <oasis:entry colname="col1">4</oasis:entry>  
         <oasis:entry colname="col2"><inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 3800–3200</oasis:entry>  
         <oasis:entry colname="col3">Relatively wetter</oasis:entry>  
         <oasis:entry colname="col4">4</oasis:entry>  
         <oasis:entry colname="col5"><inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 1484–</oasis:entry>  
         <oasis:entry colname="col6">Re-occupation of the cave</oasis:entry>
       </oasis:row>
     </oasis:tbody>
   </oasis:tgroup></oasis:table></table-wrap>

      <p>Recently, high frequency Mid-Holocene climate change has been well
documented by multiple detailed speleothem studies from the Central and
Eastern-Mediterranean basin (Fig. 5). Drysdale et al. (2006)
demonstrated a severe drought peaked at 4400–3800 yr BP through multiproxy
analyses on a U/Th-dated flowstone from Renella Cave, Central Italy. This
finding is supported by following work at nearby Corchia Cave.
Zanchetta et al. (2007) established a high-resolution
speleothem isotope record for the entire Holocene and interpreted it as an
indicator of rainfall change, in which a drier period persisting from ca.
4800 to 3800 yr BP could be inferred from relatively elevated <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O values. Elemental analysis on the same stalagmite by
Regattieri et al. (2014) presented more clear signals of
dryness peaked at ca. 4700–4200 yr BP. In the Eastern-Mediterranean basin,
Bar-Matthews and Ayalon (2011) explicitly discussed the Mid-Holocene
climate change by high-resolution dating and isotopic analyses on
speleothems from Soreq Cave in Israel; they identified multiple dry events
at 6250–6180, 5700–5600 and 5250–5170 yr BP as well as a long
drying trend since ca. 4700 yr BP peaked at 4200–4050 yr BP.
Zanchetta et al. (2014) carefully compared the
speleothem isotope records from Corchia Cave and Soreq Cave in the Central and
Eastern-Mediterranean basin, and found two coeval dry events at ca. 5600 and
ca. 5200 yr BP from the comparable <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O enrichments in two
speleothems. Detailed comparisons of these speleothem records with our new
records from Gueldaman GLD1 Cave reveal many consistencies. In particular,
periods with elevated <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O values at ca. 5700–5400, 5200 and 4400–3800 yr BP observed in Gueldaman stalagmites are all
identifiable in the speleothems from Corchia, Renella and Soreq Cave (Fig. 5), suggesting that anomalous dryness at these periods synchronously
developed across the Mediterranean basin. These observations indicate that
climates in the Mediterranean basin might have been under an identical
regional scale atmospheric regime during the Mid-Holocene.</p>
      <p>It has been suggested that climate change in mid-latitude Europe and
the Mediterranean might arise from a perturbation of the Westerlies from a
high-latitude trigger (i.e. the North Atlantic; Bond et al., 2001;
Drysdale et al., 2006; Zanchetta et al., 2014) or from dynamics within the
tropics (Booth et al., 2005; Hoerling and Kumar, 2003). The
three dry periods in the Mediterranean are broadly in phase with the ice
rafting events in the subpolar North Atlantic (Bond et al.,
2001), which suggests some links with the North Atlantic circulation. Based on
the coincidence with the elevated wind strength in Iceland
(Jackson et al., 2005), Zanchetta et al. (2014) argued that the dry events at ca. 5700–5400 and ca. 5200 yr BP
might be caused by reduction of vapor advection into the Mediterranean, due
to the intensification and northward displacement of the North Atlantic
Westerlies. However, lacking evidence of strengthened wind in the fourth
millennium BP argues for a different forcing of the 4400–3800 yr BP drought.
The considerably lower amplitude of the Bond ice rafting event at ca. 4200 yr BP than at the fifth millennium BP also indicates a varied
ocean-atmosphere circulation state. The modern mid-latitude droughts
(1998–2002) have been linked to the increased warmth in equatorial oceans
(Booth et al., 2005). During this event, SST changes lead to
persistent high pressure over the Northern Hemisphere's mid-latitudes,
causing widespread synchronous drought (Hoerling and Kumar, 2003).
However, the challenge in applying the dynamics under the 1988–2002 drought
towards an understanding of the 4400–3800 yr BP climate anomaly is that
while the mechanism operates effectively on short timescales, it has never
been tested as to whether they could produce an anomalous climate mode for
several centuries (Berkelhammer et al., 2013). General
circulation model simulations that begin with realistic boundary conditions
and are perturbed with a variety of forcings have been successfully
undertaken to understand potential mechanisms that lead to the 8200 yr BP
event (Tindall and Valdes, 2011). Similar efforts would be a useful
starting point to produce hypotheses for the dynamical underpinnings of the
4200 yr BP event.</p>
</sec>
<sec id="Ch1.S4.SS3">
  <title>Possible relations between climate anomaly and cultural change</title>

      <?xmltex \floatpos{t}?><fig id="Ch1.F7" specific-use="star"><caption><p>Comparison between evidence of ancient human occupation and of
past climate change from the Gueldaman GLD1 Cave. The definition of
occupation phases 0–4 and climate periods 1–4 are referred to the text.</p></caption>
          <?xmltex \igopts{width=398.338583pt}?><graphic xlink:href="https://cp.copernicus.org/articles/12/1/2016/cp-12-1-2016-f07.pdf"/>

        </fig>

      <p>A regional drought ca. 4200 yr BP has been widely linked to ancient cultural
changes in the Eastern Mediterranean and Asia (Staubwasser and Weiss,
2006), though, in many cases, climatic inferences have been derived from
sites that are distant to these human settlements. For instance, evidence of
reduced precipitation from elevated <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O of Soreq stalagmites
(Israel) and increased dust input into the Gulf of Oman sediment core has
been suggested to contribute to the collapse of the Akkadian empire in
Mesopotamia (Bar-Matthews and Ayalon, 2011; Cullen et al., 2000; Weiss et
al., 1993). Similarly, a dry period inferred from reduced discharge of the
Indus river and elevated <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O of a Northeast-Indian stalagmite has
been linked with the Indus Valley de-urbanization (Berkelhammer et al.,
2013; Staubwasser et al., 2003; Staubwasser and Weiss, 2006). A recent study
in the ancient Near East, however, revealed that the regional impact of the
drought on ancient civilizations, being influenced by geographic factors and
human technology, were highly diverse even within spatially limited cultural
units (Riehla et al., 2014). This highlights the need for caution when
linking evidence of human activities from a site to evidence of climate
oscillations from another one.</p>
      <p>The present study in the Gueldaman GLD1 Cave provides an opportunity to test
climate–culture relations by comparing in situ archeological sequences and
high-resolution paleoclimate records, thereby avoiding the uncertainty of
inter-site correlation arising from complex spatial heterogeneity in climate
and demography.</p>
      <p>To facilitate the comparison, stalagmite-inferred climate changes at the
cave site during ca. 6200–3200 yr BP are separated into four periods 1–4
(Table 3):
<list list-type="bullet"><list-item><p>Period 1 (<inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 6200–5100 yr BP): wet, superimposed by several
centennial-scale drier events;</p></list-item><list-item><p>Period 2 (<inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 5100–4400 yr BP): wettest, ending with a
<inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 200-year long shift from the wettest to extreme dry
conditions;</p></list-item><list-item><p>Period 3 (<inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 4400–3800 yr BP): a drought-like climatic anomaly;</p></list-item><list-item><p>Period 4 (<inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 3800–3200 yr BP): relatively wetter.</p></list-item></list>
In parallel, from the abundance of archaeological remains (especially bone,
charcoal and pottery; Fig. 6), the temporal evolution of past cave
occupations can be separated into five phases 0–4 (Table 3):
<list list-type="bullet"><list-item><p>Phase 0 (<inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 7002–6003 cal yr BP): permanent and intensive
occupation;</p></list-item><list-item><p>Phase 1 (<inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 6003–4918 cal yr BP): permanent but less intensive
occupation;</p></list-item><list-item><p>Phase 2 (<inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 4918–4403 cal yr BP): permanent and most intensive
occupation;</p></list-item><list-item><p>Phase 3 (<inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 4403–1484 cal yr BP): abandonment of the
cave/occasional visits;</p></list-item><list-item><p>Phase 4 (<inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 1484 cal yr BP-): re-occupation of the cave.</p></list-item></list>
Correlations can be identified when comparing the climatic and
archaeological records, though this does not necessarily mean that
occupation of the cave depends merely on climate (Table 3; Fig. 7). When the
climate was wet and variable ca. 6200–5100 yr BP (Period 1), the Gueldaman
GLD1 Cave preserved a few bones and rare charcoals and potteries (Phase 1; Fig. 7). When the climate was wettest ca. 5100–4400 yr BP (Period 2), the
most abundance of bones, charcoals and potteries suggests a permanent and
more intensive occupation of the cave (Phase 2; Fig. 7). More striking is
the drought-like climate anomaly that has been establishing ca. 4400–3800 yr BP (Period 3), from which the cave was abandoned for ca. 3000 years
(indicated by a dramatic decrease in anthropogenic remains, especially
charcoal and pottery; Phase 3; Fig. 7). The rarer bones seen in this
period imply that the cave might have been occasionally visited until its
re-occupation at ca. 1484 cal yr BP (Fig. 7). These observations argue for
links between climate and settlement activity especially during the 4200 yr BP climate anomaly. Water availability was likely crucial to maintain the
Neolithic community at Gueldaman, Northern Algeria and the prolonged severe drought
ca. 4400–3800 yr BP might have played a role in triggering the settlement
abandonment, indicating that the pastoral economy may not be as resistant,
as commonly assumed, to climate anomaly in semi-arid area.</p>
      <p>Moreover, the sole piece of the bone from large ungulate (supposed to be
elephant or rhinoceros) found at the depth of <inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 110 cm
(Kherbouche et al., 2014) was anchored by two calibrated
<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>14</mml:mn></mml:msup></mml:math></inline-formula>C dates from the present study between 6003 and 4913 cal yr BP, which is
in line with the latest survival of large mammal species (e.g., <italic>S. antiquus</italic>) at the
proximate sites of Northern Algeria during the Mid-Holocene (Faith, 2014 and
references wherein). The extinction of the Mid-Holocene large mammal in
Northern Algeria was attributed to the competition with pastoralists and livestock
for increasingly scarce water, corresponding with an abrupt climatic shift
toward extreme aridity  in the Sahara region  ca. 5500 cal yr BP (i.e. the end
of the Humid Africa Period  (deMenocal et al., 2000; Faith,
2014). Recently, the timing of this climatic transition was refined to ca.
4900 yr BP <inline-formula><mml:math display="inline"><mml:mo>±</mml:mo></mml:math></inline-formula> 200 yrs (McGee et al., 2013). In
addition, a paleoenvironmental study in the Sahara revealed that the
Mid-Holocene deteriorations of terrestrial ecosystem and climate culminated
at ca. 4200–3900 cal yr BP (e.g., Kröpelin
et al., 2006). Therefore, it is more likely based on evidence from the
Gueldaman GLD1 Cave and the proximate sites (Faith, 2014) that
extinction of large mammal/ungulate in Northern Algeria occurred during the
prolonged drought ca. 4400–3800 yr BP.</p>
</sec>
</sec>
<sec id="Ch1.S5" sec-type="conclusions">
  <title>Conclusions</title>
      <p>It is increasingly clear based on a growing number of records spanning
across much of mid-to-low latitudes, Northern Europe, and the Atlantic ocean that
there was a significant large-scale climate anomaly at around 4200 yr BP
(Booth et al., 2005). The 4200 yr BP aridity that had been
suggested to affect the Early Bronze Age populations from the Aegean to
ancient Near East was recently characterized by high-resolution speleothem
records from the Central and Eastern-Mediterranean basin (Bar-Matthews and
Ayalon, 2011; Drysdale et al., 2006; Zanchetta et al., 2014). The new record
presented here from the Gueldaman GLD1 Cave in Northern Algeria provides increased
evidence of a prolonged severe drought ca. 4400–3800 yr BP, which suggests
that the Mid-Holocene dryness spread to the Western Mediterranean of Northern Africa.</p>
      <p>Radiocarbon dating made on charcoals constrains reasonably well the age of
archaeological deposits excavated inside the cave
(Kherbouche et al., 2014) and reveals significant
changes in human occupation during the last ca. 7000 years. Comparison of
the stalagmite record with in situ archaeological sequence suggests
synchronicity between climate and settlement activity. Relatively wet
periods coincide with the periods of intensive human occupation.
Particularly, the timing of the prolonged drought at ca.  4400–3800 yr BP
blanket the onset of the cave abandonment event shortly after ca. 4403 cal yr BP, which argues a possible role of climate anomaly in this societal
disruption. Further work on pollen-based reconstruction of environment change from the excavation sequence and on refinement
of the chronology of transitions between different occupation phases would
potentially uncover the intrinsic relations among climate, environment and
settlement. It is suggested that the methodology and the findings from the
present study at the Gueldaman GLD1 Cave be applied and tested at other
sites.</p>
</sec>

      
      </body>
    <back><app-group>
        <supplementary-material position="anchor"><p><bold>The Supplement related to this article is available online at <inline-supplementary-material xlink:href="http://dx.doi.org/10.5194/cp-12-1-2016-supplement" xlink:title="pdf">doi:10.5194/cp-12-1-2016-supplement</inline-supplementary-material>.</bold></p></supplementary-material>
        </app-group><ack><title>Acknowledgements</title><p>Radiocarbon dating was analyzed by Jean-Pierre Dumoulin at ARTEMIS (LMC14,
Saclay). We thank Edwige Pons-Branchu, Monique Pierre for the U/Th dating of
the base part of stalagmite GLD1-stm2 during the earlier stage of this
study. We also thank Lijuan Sha at the Xi'an Jiaotong University for
assistance with the U/Th dating. We appreciate Russell N. Drysdale, Giuliano Zanchetta and Miryam Bar-Matthews for sharing the isotopic data shown in
Fig. 5. Thanks to Cecilia Garrec for editing assistance. We are thankful
to Giuliano Zanchetta and an anonymous referee for their constructive
comments which improved this paper. This work was funded by the CNRS INSU
program PALEOMEX-ISOMEX, the NSFC grant 41230524 and the CSC scholarship.
<?xmltex \hack{\newline}?><?xmltex \hack{\newline}?>
Edited by: N. C. Nebout</p></ack><ref-list>
    <title>References</title>

      <ref id="bib1.bib1"><label>1</label><mixed-citation>
Bar-Matthews, M. and Ayalon, A.: Mid-Holocene climate variations revealed
by high-resolution speleothem records from Soreq Cave, Israel and their
correlation with cultural changes, Holocene, 21, 163–171, 2011.</mixed-citation></ref>
      <ref id="bib1.bib2"><label>2</label><mixed-citation>
Bar-Matthews, M., Ayalon, A., and Kaufman, A.: Late Quaternary Paleoclimate
in the Eastern Mediterranean Region from Stable Isotope Analysis of
Speleothems at Soreq Cave, Israel, Quat. Res., 47, 155–168, 1997.</mixed-citation></ref>
      <ref id="bib1.bib3"><label>3</label><mixed-citation>
Bar-Matthews, M., Ayalon, A., Gilmour, M., Matthews, A., and Hawkesworth, C.
J.: Sea–land oxygen isotopic relationships from planktonic foraminifera and
speleothems in the Eastern Mediterranean region and their implication for
paleorainfall during interglacial intervals, Geochim. Cosmochim. Ac., 67,
3181–3199, 2003.</mixed-citation></ref>
      <ref id="bib1.bib4"><label>4</label><mixed-citation>
Berkelhammer, M., Sinha, A., Stott, L., Cheng, H., Pausata, F. S. R., and
Yoshimura, K.: An abrupt shift in the Indian Monsoon 4000 years ago, in:
Climates, Landscapes, and Civilizations, edited by: Giosan, L., Fuller, D. Q., Nicoll,
K., Flad, R. K., and Clift, P. D., American Geophysical Union,
Washington, DC, 75–87, 2013.</mixed-citation></ref>
      <ref id="bib1.bib5"><label>5</label><mixed-citation>
Bond, G., Kromer, B., Beer, J., Muscheler, R., Evans, M. N., Showers, W.,
Hoffmann, S., Lotti-Bond, R., Hajdas, I., and Bonani, G.: Persistent Solar
Influence on North Atlantic Climate During the Holocene, Science, 294,
2130–2136, 2001.</mixed-citation></ref>
      <ref id="bib1.bib6"><label>6</label><mixed-citation>
Booth, R. K., Jackson, S. T., Forman, S. L., Kutzbach, J. E., E.A. Bettis,
I., Kreig, J., and Wright, D. K.: A severe centennial-scale drought in
midcontinental North America 4200 years ago and apparent global linkages,
Holocene, 15, 321–328, 2005.</mixed-citation></ref>
      <ref id="bib1.bib7"><label>7</label><mixed-citation>
Carrión, J. S.: Patterns and processes of Late Quaternary environmental
change in a montane region of southwestern Europe, Quat. Sci. Rev., 21,
2047–2066, 2002.</mixed-citation></ref>
      <ref id="bib1.bib8"><label>8</label><mixed-citation>Cheng, H., Edwards, L. R., Shen, C. C., Polyak, V. J., Asmerom, Y.,
Woodhead, J., Hellstrom, J., Wang, Y., Kong, X., Spötl, C., Wang, X.,
and Alexander Jr, E. C.: Improvements in <inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>230</mml:mn></mml:msup></mml:math></inline-formula>Th dating, <inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>230</mml:mn></mml:msup></mml:math></inline-formula>Th and
<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>234</mml:mn></mml:msup></mml:math></inline-formula>U half-life values, and U-Th isotopic measurements by
multi-collector inductively coupled plasma mass spectrometry, Earth Planet.
Sci. Lett., 371–372, 82–91, 2013.</mixed-citation></ref>
      <ref id="bib1.bib9"><label>9</label><mixed-citation>
Coombes, P. and Barber, K.: Environmental determinism in Holocene research:
causality or coincidence?, Area, 37, 303–311, 2005.</mixed-citation></ref>
      <ref id="bib1.bib10"><label>10</label><mixed-citation>
Cottereau, E., Arnold, M., Moreau, C., Baque, D., Bavay, D., Caffy, I.,
Comby, C., Dumoulin, J.-P., Hain, S., Perron, M., Salomon, J., and Setti,
V.: Artemis, the New 14C AMS14 in Saclay, France, Radiocarbon, 49, 291–299,
2007.</mixed-citation></ref>
      <ref id="bib1.bib11"><label>11</label><mixed-citation>
Cullen, H. M., deMenocal, P. B., Hemming, S., Hemming, G., Brown, F. H.,
Guilderson, T., and Sirocko, F.: Climate change and the collapse of the
Akkadian empire: Evidence from the deep sea, Geology, 28, 379–382, 2000.</mixed-citation></ref>
      <ref id="bib1.bib12"><label>12</label><mixed-citation>
Cuthbert, M. O., Baker, A., Jex, C. N., Graham, P. W., Treble, P. C.,
Andersen, M. S., and Acworth, R. I.: Drip water isotopes in semi-arid karst:
Implications for speleothem paleoclimatology, Earth Planet. Sci. Lett., 395,
194–204, 2014.</mixed-citation></ref>
      <ref id="bib1.bib13"><label>13</label><mixed-citation>
deMenocal, P., Ortiz, J., Guilderson, T., Adkins, J., Sarnthein, M., Baker,
L., and Yarusinsky, M.: Abrupt onset and termination of the African Humid
Period: rapid climate responses to gradual insolation forcing, Quat. Sci.
Rev., 19, 347–361, 2000.</mixed-citation></ref>
      <ref id="bib1.bib14"><label>14</label><mixed-citation>Dixit, Y., Hodell, D. A., and Petrie, C. A.: Abrupt weakening of the summer
monsoon in northwest India <inline-formula><mml:math display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 4100 yr ago, Geology, 42,
339–342, 2014.</mixed-citation></ref>
      <ref id="bib1.bib15"><label>15</label><mixed-citation>
Drysdale, R., Zanchetta, G., Hellstrom, J., Maas, R., Fallick, A., Pickett,
M., Cartwright, I., and Piccini, L.: Late Holocene drought responsible for
the collapse of Old World civilizations is recorded in an Italian cave
flowstone, Geology, 34, 101–104, 2006.</mixed-citation></ref>
      <ref id="bib1.bib16"><label>16</label><mixed-citation>Drysdalea, R. N., Zanchetta, G., Hellstrom, J. C., Fallick, A. E., Zhao,
J.-x., Isola, I., and Bruschi, G.: Palaeoclimatic implications of the growth
history and stable isotope (<inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>18</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>O and <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>13</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>C)
geochemistry of a Middle to Late Pleistocene stalagmite from central-western
Italy, Earth Planet. Sci. Lett., 227, 215–229, 2004.</mixed-citation></ref>
      <ref id="bib1.bib17"><label>17</label><mixed-citation>Edwards, R. L., Chen, J. H., and Wasserburg, G. J.:
<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>238</mml:mn></mml:msup></mml:math></inline-formula>U-<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>234</mml:mn></mml:msup></mml:math></inline-formula>U-<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>230</mml:mn></mml:msup></mml:math></inline-formula>Th-<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>232</mml:mn></mml:msup></mml:math></inline-formula>Th systematics and the precise
measurements of time over the past 500 000 years., Earth Planet. Sci. Lett.,
81, 175–192, 1987.</mixed-citation></ref>
      <ref id="bib1.bib18"><label>18</label><mixed-citation>
Fairchild, I. J. and Baker, A.: Speleothem science – from process to past
environments, John Wiley &amp; Sons, Ltd, Chichester, UK, 2012.</mixed-citation></ref>
      <ref id="bib1.bib19"><label>19</label><mixed-citation>
Fairchild, I. J., Borsato, A., Tooth, A. F., Frisia, S., Hawkesworth, C. J.,
Huang, Y. M., McDermott, F., and Spiro, B.: Controls on trace element
(Sr–Mg) compositions of carbonate cave waters: implications for speleothem
climatic records, Chem. Geol., 166, 255–269, 2000.</mixed-citation></ref>
      <ref id="bib1.bib20"><label>20</label><mixed-citation>
Faith, J. T.: Late Pleistocene and Holocene mammal extinctions on
continental Africa, Earth-Sci. Rev., 128, 105–121, 2014.</mixed-citation></ref>
      <ref id="bib1.bib21"><label>21</label><mixed-citation>
Finné, M., Holmgren, K., Sundqvist, H. S., Weiberg, E., and Lindblom,
M.: Climate in the eastern Mediterranean, and adjacent regions, during the
past 6000 years – A review, J. Archaeol. Sci., 38, 3153–3173, 2011.</mixed-citation></ref>
      <ref id="bib1.bib22"><label>22</label><mixed-citation>Genty, D., Baker, A., Massault, M., Proctor, C., Gilmour, M., and
Pons-Branchu, E.: Dead carbon in stalagmites: Carbonate bedrock
paleodissolution vs. ageing of soil organic matter. Implications for
<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>13</mml:mn></mml:msup></mml:math></inline-formula>C variations in speleothems, Geochim. Cosmochim. Ac., 65, 3443–3457,
2001a.</mixed-citation></ref>
      <ref id="bib1.bib23"><label>23</label><mixed-citation>
Genty, D., Baker, A., and Vokal, B.: Intra- and inter-annual growth rate of
modern stalagmites, Chem. Geol., 176, 191–212, 2001b.</mixed-citation></ref>
      <ref id="bib1.bib24"><label>24</label><mixed-citation>
Genty, D., Labuhn, I., Hoffmann, G., Danis, P. A., Mestre, O., Bourges, F.,
Wainer, K., Massault, M., Régnier, E., Orengo, P., Falourd, S., and
Minster, B.: Rainfall and cave water isotopic relationships in two
South-France sites, Geochim. Cosmochim. Ac., 131, 323–343, 2014.</mixed-citation></ref>
      <ref id="bib1.bib25"><label>25</label><mixed-citation>
Hendy, C. H.: The isotopic geochemistry of speleothems-I, The calculation of
the effects of different modes of formation on the isotopic composition of
speleothems and their applicability as palaeoclimatic indicators, Geochim. Cosmochim. Ac., 35, 801–824, 1971.</mixed-citation></ref>
      <ref id="bib1.bib26"><label>26</label><mixed-citation>
Hoerling, M. and Kumar, A.: The perfect ocean for drought, Science, 299,
691–694, 2003.</mixed-citation></ref>
      <ref id="bib1.bib27"><label>27</label><mixed-citation>
IAEA: Isotopic composition of precipitation in the Mediterranean Basin in
relation to air circulation patterns and climate: final report of a
coordinated research project, 2000–2004, International Atomic Energy Agency,
Vienna, Austria, 2005.</mixed-citation></ref>
      <ref id="bib1.bib28"><label>28</label><mixed-citation>
Jackson, M. G., Oskarsson, N., Tronnes, R. G., McManus, J. F., Oppo, D. W.,
Gronvold, K., Hart, S. R., and Sachs, J. P.: Holocene loess deposition in
Iceland: evidence for millennial-scale atmosphre-ocean coupling in the North
Atlantic, Geology, 33, 509–512, 2005.</mixed-citation></ref>
      <ref id="bib1.bib29"><label>29</label><mixed-citation>Jaffey, A. H., Flynn, K. F., Glendenin, L. E., Bentley, W. C., and Essling,
A. M.: Precision measurement of half-lives and specific activities of
<inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>235</mml:mn></mml:msup></mml:math></inline-formula>U and <inline-formula><mml:math display="inline"><mml:msup><mml:mi/><mml:mn>238</mml:mn></mml:msup></mml:math></inline-formula>U, Phys. Rev. C, 4, 1889–1906, 1971.</mixed-citation></ref>
      <ref id="bib1.bib30"><label>30</label><mixed-citation>
Jalut, G., Esteban Amat, A., Bonnet, L., Gauquelin, T., and Fontugne, M.:
Holocene climatic changes in the Western Mediterranean, from south-east
France to south-east Spain, Palaeogeogr. Palaeocl. Palaeoecol., 160,
255–290, 2000.</mixed-citation></ref>
      <ref id="bib1.bib31"><label>31</label><mixed-citation>
Johnson, K. R., Hu, C. Y., Belshaw, N. S., and Henderson, G. M.: Seasonal
trace-element and stable-isotope variations in a Chinese speleothem: The
potential for high-resolution paleomonsoon reconstruction, Earth Planet.
Sci. Lett., 244, 394–407, 2006.</mixed-citation></ref>
      <ref id="bib1.bib32"><label>32</label><mixed-citation>
Kaufman, A., Wasserburg, G. J., Porcelli, D., Bar-Matthews, M., Ayalon, A.,
and Halicz, L.: U-Th isotope systematics from the Soreq cave, Israel and
climatic correlations, Earth Planet. Sci. Lett., 156, 141–155, 1998.</mixed-citation></ref>
      <ref id="bib1.bib33"><label>33</label><mixed-citation>
Kherbouche, F., Hachi, S., Abdessadok, S., Sehil, N., Merzoug, S., Sari, L.,
Benchernine, R., Chelli, R., Fontugne, M., Barbaza, M., and Roubet, C.:
Preliminary results from excavations at Gueldaman Cave GLD1 (Akbou,
Algeria), Quat. Int., 320, 109–124, 2014.</mixed-citation></ref>
      <ref id="bib1.bib34"><label>34</label><mixed-citation>
Kröpelin, S., Verschuren, D., Lézine, A.-M., Eggermont, H., Cocquyt,
C., Francus, P., Cazet, J.-P., Fagot, M., Rumes, B., Russell, J. M., Darius,
F., Conley, D. J., Schuster, M., Suchodoletz, H. v., and Engstrom, D. R.:
Climate-Driven Ecosystem Succession in the Sahara: The Past 6000 Years,
Science, 320, 765–768, 2006.</mixed-citation></ref>
      <ref id="bib1.bib35"><label>35</label><mixed-citation>
Lachniet, M. S.: Climatic and environmental controls on speleothem
oxygen-isotope values, Quat. Sci. Rev., 28, 412–432, 2009.</mixed-citation></ref>
      <ref id="bib1.bib36"><label>36</label><mixed-citation>
Magny, M., Vannière, B., Calo, C., Millet, L., Leroux, A., Peyron, O.,
Zanchetta, G., La Mantia, T., and Tinner, W.: Holocene hydrological changes
in south-western Mediterranean as recorded by lake-level fluctuations at
Lago Preola, a coastal lake in southern Sicily, Italy, Quat. Sci. Rev., 30,
2459–2475, 2011.</mixed-citation></ref>
      <ref id="bib1.bib37"><label>37</label><mixed-citation>Magny, M., Combourieu-Nebout, N., de Beaulieu, J. L., Bout-Roumazeilles, V., Colombaroli, D., Desprat, S., Francke, A.,
Joannin, S., Ortu, E., Peyron, O., Revel, M., Sadori, L., Siani, G., Sicre, M. A., Samartin, S., Simonneau, A., Tinner, W., Vannière, B.,
Wagner, B., Zanchetta, G., Anselmetti, F., Brugiapaglia, E., Chapron, E., Debret, M., Desmet, M., Didier, J., Essallami, L., Galop, D., Gilli, A.,
Haas, J. N., Kallel, N., Millet, L., Stock, A., Turon, J. L., and Wirth, S.: North-south palaeohydrological contrasts in the central Mediterranean
during the Holocene: tentative synthesis and working hypotheses, Clim. Past, 9, 2043–2071, <ext-link xlink:href="http://dx.doi.org/10.5194/cp-9-2043-2013" ext-link-type="DOI">10.5194/cp-9-2043-2013</ext-link>, 2013.</mixed-citation></ref>
      <ref id="bib1.bib38"><label>38</label><mixed-citation>
Martrat, B., Grimalt, J. O., Lopez-Martizez, C., Cacho, I., Sierro, F. J.,
Flores, J. A., Zahn, R., Canals, M., Curtis, J. H., and Hodell, D. A.:
Abrupt temperature changes in the Western Mediterranean over the past
250 000 years, Science, 306, 1762–1765, 2004.</mixed-citation></ref>
      <ref id="bib1.bib39"><label>39</label><mixed-citation>
Mayewski, P. A., Rohling, E. E., Stager, J. C., Karlén, W., Maasch, K.
A., Meeker, L. D., Meyerson, E. A., Gasse, F., Kreveld, S. V., Holmgren, K.,
Lee-Thorp, J., Rosqvist, G., Rack, F., Staubwasser, M., Schneider, R. R.,
and Steig, E. J.: Holocene climate variability, Quat. Res., 62, 243–255,
2004.</mixed-citation></ref>
      <ref id="bib1.bib40"><label>40</label><mixed-citation>
McDermott, F.: Palaeo-climate reconstruction from stable isotope variations
in speleothems: a review, Quat. Sci. Rev., 23, 901–918, 2004.</mixed-citation></ref>
      <ref id="bib1.bib41"><label>41</label><mixed-citation>
McGee, D., deMenocal, P. B., Winckler, G., W.Stuut, J. B., and Bradtmiller,
L. I.: The magnitude, timing and abruptness of changes in North African dust
deposition over the last 20 000 yr, Earth Planet. Sci. Lett., 371–372,
163–176, 2013.</mixed-citation></ref>
      <ref id="bib1.bib42"><label>42</label><mixed-citation>
Mickler, P. J., Banner, J. L., Stern, L., Asmeron, Y., Edwards, R. L., and
Ito, E.: Stable isotope variations in modern tropical speleothems:
Evaluating equilibrium vs. kinetic isotope effects, Geochim. Cosmochim. Ac., 68, 4381–4393, 2004.</mixed-citation></ref>
      <ref id="bib1.bib43"><label>43</label><mixed-citation>
Mickler, P. J., Stern, L. A., and Banner, J. L.: Large kinetic isotope
effects in modern speleothems, Geol. Soc. Am. Bull., 118, 65–81, 2006.</mixed-citation></ref>
      <ref id="bib1.bib44"><label>44</label><mixed-citation>
Morrellon, M., zvalero-Garces, B., Vegas-Vilarrubia, T., Gonzalez-Samperiz,
P., Romero, O., Delgado-Huertas, A., Mata, P., Moreno, A., Rico, M., and
Corella, J. P.: Lateglacial and Holocene paleohydrology in the western
Mediterranean region: the Lake Estanya record (NE Spain), Quat. Sci. Rev.,
28, 2582–2599, 2009.</mixed-citation></ref>
      <ref id="bib1.bib45"><label>45</label><mixed-citation>
Regattieri, E., Zanchetta, G., Drysdale, R. N., Isola, I., Hellstrom, J. C.,
and Dallai, L.: Lateglacial to Holocene trace element record (Ba, Mg, Sr)
from Corchia Cave (Apuan Alps, central Italy): paleoenvironmental
implications, J. Quat. Sci., 29, 381–392, 2014.</mixed-citation></ref>
      <ref id="bib1.bib46"><label>46</label><mixed-citation>
Reimer, P. J., Bard, E., Bayliss, A., Beck, J. W., Blackwell, P. J., Bronk
Ramsey, C., Buck, C. E., Cheng, H., Edwards, R. L., Friedrich, M., Grootes,
P. M., Guilderson, T. P., Haflidason, H., Hajdas, I., Hatté, C., Heaton,
T. J., Hoffmann, D. L., Hogg, A. G., Hughen, K. A., Kaiser, K. F., Kromer,
B., Manning, S. W., Niu, M., Reimer, R. W., Richards, D. A., Scott, E. M.,
Southon, J. R., Staff, R. A., Turney, C. S. M., and van der Plicht, J.:
IntCal13 and Marine13 radiocarbon age calibration curves 0–52 000 years cal
BP, Radiocarbon, 55, 1869–1887, 2013.</mixed-citation></ref>
      <ref id="bib1.bib47"><label>47</label><mixed-citation>Riehla, S., Pustovoytov, K. E., Weippert, H., Klett, S., and Hole, F.:
Drought stress variability in ancient Near Eastern agricultural systems
evidenced by <inline-formula><mml:math display="inline"><mml:mrow><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn>13</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>C in barley grain, P. Natl. Acad. Sci. USA, 111, 12348–12353,
2014.</mixed-citation></ref>
      <ref id="bib1.bib48"><label>48</label><mixed-citation>
Roberts, N., Brayshaw, D., Kuzucuoglu, C., Perez, R., and Sadori, L.: The
mid-Holocene climatic transition in the Mediterranean: Causes and
consequences, Holocene, 21, 3–13, 2011.</mixed-citation></ref>
      <ref id="bib1.bib49"><label>49</label><mixed-citation>
Roland, T. P.: Was there a “4.2 kyr event” in Great Britain and Ireland?
Evidence from the peatland record, PhD, University of Exeter, Exeter, UK,
2012.</mixed-citation></ref>
      <ref id="bib1.bib50"><label>50</label><mixed-citation>
Sadori, L. and Narcisi, B.: The postglacial record of environmental history
from Lago di Pergusa, Sicily, Holocene, 11, 655–672, 2001.</mixed-citation></ref>
      <ref id="bib1.bib51"><label>51</label><mixed-citation>
Sadori, L. and Giardini, M.: Charcoal analysis, a method to study vegetation
and climate of the Holocene: The case of Lago di Pergusa (Sicily, Italy),
Geobios, 40, 173–180, 2007.</mixed-citation></ref>
      <ref id="bib1.bib52"><label>52</label><mixed-citation>
Sadori, L., Jahns, S., and Peyron, O.: Mid-Holocene vegetation history of
the central Mediterranean,  Holocene, 21, 117–129, 2011.</mixed-citation></ref>
      <ref id="bib1.bib53"><label>53</label><mixed-citation>
Scholz, D. and Hoffmann, D. L.: StalAge – An algorithm designed for
construction of speleothem age models, Quat. Geochronol., 6, 369–382, 2011.</mixed-citation></ref>
      <ref id="bib1.bib54"><label>54</label><mixed-citation>
Seager, R., Ting, M., Held, I., Kushnir, Y., Lu, J., Vecchi, G., Huang, H.
P., Harnik, N., Leetmaa, A., Lau, N. C., Li, C., Velez, J., and Naik, N.:
Model projections of an imminent transition to a more arid climate in
southwestern North America, Science, 316, 1181–1184, 2007.</mixed-citation></ref>
      <ref id="bib1.bib55"><label>55</label><mixed-citation>
Staubwasser, M. and Weiss, H.: Holocene climate and cultural evolution in
late prehistoric–early historic West Asia, Quat. Res., 66, 372–378, 2006.</mixed-citation></ref>
      <ref id="bib1.bib56"><label>56</label><mixed-citation>
Staubwasser, M., Sirocko, F., Grootes, P., and Segl, M.: Climate change at
the 4.2 ka BP termination of the Indus valley civilization and Holocene
south Asian monsoon variability, Geophys. Res. Lett., 30, 1–4, 2003.</mixed-citation></ref>
      <ref id="bib1.bib57"><label>57</label><mixed-citation>
Stoll, H. M., Moreno, A., Mendez-Vicente, A., Gonzalez-Lemos, S.,
Jimenez-Sanchez, M., Dominguez-Guesta, M. J., Edwards, R. L., Cheng, H., and
Wang, X.: Paleoclimate and growth rates of speleothems in the northwestern
Iberian peninsula over the last two glacial cycles, Quat. Res., 80, 284–290,
2013.</mixed-citation></ref>
      <ref id="bib1.bib58"><label>58</label><mixed-citation>
Tindall, J. C. and Valdes, P. J.: Modeling the 8.2 ka event using a coupled
atmosphere-ocean GCM, Global Planet. Change, 79, 312–321, 2011.</mixed-citation></ref>
      <ref id="bib1.bib59"><label>59</label><mixed-citation>Touchan, R., Anchukaitis, K. J., Meko, D. M., Attalah, S., Baisan, C., and
Aloui, A.: Long term context for recent drought in northwestern Africa,
Geophys. Res. Lett., 35, L13705, <ext-link xlink:href="http://dx.doi.org/10.1029/2008GL034264" ext-link-type="DOI">10.1029/2008GL034264</ext-link>, 2008.</mixed-citation></ref>
      <ref id="bib1.bib60"><label>60</label><mixed-citation>
Touchan, R., Anchukaitis, K. J., Meko, D. M., Sabir, M., Attalah, S., and
Aloui, A.: Spatiotemporal drought variability in northwestern Africa over
the last nine centuries, Clim. Dyn., 37, 237–252, 2011.</mixed-citation></ref>
      <ref id="bib1.bib61"><label>61</label><mixed-citation>
Vaks, A., Woodhead, J., Bar-Matthews, M., Ayalon, A., Cliff, R. A.,
Zilberman, T., Matthews, A., and Frumkin, A.: Pliocene–Pleistocene climate
of the northern margin of Saharan–Arabian Desert recorded in speleothems
from the Negev Desert, Israel, Earth Planet. Sci. Lett., 368, 88–100, 2013.</mixed-citation></ref>
      <ref id="bib1.bib62"><label>62</label><mixed-citation>
Wanner, H., Beer, J., Bütikofer, J., Crowley, T. J., Cubasch, U.,
Flückiger, J., Goosse, H., Grosjean, M., Joos, F., Kaplan, J. O.,
Küttel, M., Müller, S. A., Prentice, C. I., Solomina, O., Stocker,
T. F., Tarasov, P., Wagner, M., and Widmann, M.: Mid- to Late Holocene
climate change: an overview, Quat. Sci. Rev., 27, 1791–1828, 2008.</mixed-citation></ref>
      <ref id="bib1.bib63"><label>63</label><mixed-citation>
Weiss, H. and Bradley, R. S.: What Drives Societal Collapse?, Science, 291,
609–610, 2000.</mixed-citation></ref>
      <ref id="bib1.bib64"><label>64</label><mixed-citation>
Weiss, H., Courty, M.-A., Wetterstrom, W., Guichard, F., Senior, L., Meadow,
R., and Curnow, A.: The genesis and collapse of third millennium North
Mesopotamian civilization, Science, 261, 995–1004, 1993.</mixed-citation></ref>
      <ref id="bib1.bib65"><label>65</label><mixed-citation>Wiener, M. H.: The interaction of climate change and agency in the collapse
of civilizations ca. 2300–2000 BC, Radiocarbon, 56, S1–S16,
<ext-link xlink:href="http://dx.doi.org/10.2458/azu_rc.56.18325" ext-link-type="DOI">10.2458/azu_rc.56.18325</ext-link>, 2014.</mixed-citation></ref>
      <ref id="bib1.bib66"><label>66</label><mixed-citation>Zanchetta, G., Drysdale, R. N., Hellstrom, J. C., Fallick, A. E., Isola, I.,
Gagan, M. K., and Paresch, M. T.: Enhanced rainfall in the Western
Mediterranean during deposition of sapropel S1: stalagmite evidence from
Corchia cave (Central Italy), Quat. Sci. Rev., 26, 279–286, 2007.
 </mixed-citation></ref><?xmltex \hack{\newpage}?>
      <ref id="bib1.bib67"><label>67</label><mixed-citation>
Zanchetta, G., Giraudi, C., Sulpizio, R., Magny, M., Drysdale, R. N., and
Sadori, L.: Constraining the onset of the Holocene “Neoglacial” over the
central Italy using tephra layers, Quat. Res., 78, 236–247, 2012a.</mixed-citation></ref>
      <ref id="bib1.bib68"><label>68</label><mixed-citation>
Zanchetta, G., van Welden, A., Baneschi, I., Drysdale, R. N., Sadori, L.,
Roberts, N., Giardini, M., Beck, C., and Pascucci, V.: Multiproxy record for
the last 4500 years from Lake Shkodra (Albania/Montenegro), J. Quat. Sci.,
27, 780–789, 2012b.</mixed-citation></ref>
      <ref id="bib1.bib69"><label>69</label><mixed-citation>
Zanchetta, G., Bar-Matthews, M., Drysdale, R. N., Lionello, P., Ayalon, A.,
Hellstrom, J. C., Isola, I., and Regattieri, E.: Coeval dry events in the
central and eastern Mediterranean basin at 5.2 and 5.6 ka recorded in
Corchia (Italy) and Soreq caves (Israel) speleothems, Global Planet. Change,
122, 130–139, 2014.</mixed-citation></ref>

  </ref-list><app-group content-type="float"><app><title/>

    </app></app-group></back>
    <!--<article-title-html>Evidence of a prolonged drought ca. 4200 yr BP correlated with prehistoric
settlement abandonment from the Gueldaman GLD1 Cave, Northern Algeria</article-title-html>
<abstract-html><p class="p">Middle Holocene cultures have been widely studied around the Eastern-Mediterranean
basin in the last 30 years and past cultural activities have been commonly
linked with regional climate changes. However, in many cases such linkage is
equivocal, in part due to existing climatic evidence that has been derived
from areas outside the distribution of ancient settlements, leading to
uncertainty from complex spatial heterogeneity in both climate and
demography. A few high-resolution well-dated paleoclimate records were
recently established using speleothems in the Central and Eastern-Mediterranean
basin, however, the scarcity of such records in the western part of the
Mediterranean prevents us from correlating past climate evolutions across
the basin and deciphering climate–culture relation at fine timescales.</p><p class="p">Here we report the first decadal-resolved Mid-Holocene climate proxy records
from the Western-Mediterranean basin based on the stable carbon and oxygen
isotopes analyses of two U/Th dated stalagmites from the Gueldaman GLD1 Cave
in Northern Algeria. Comparison of our records with those from Italy and Israel
reveals synchronous (multi) centennial dry phases centered at ca. 5600, ca. 5200 and ca. 4200 yr BP across the Mediterranean basin. New
calibrated radiocarbon dating constrains reasonably well the age of rich
anthropogenic deposits (e.g., faunal remains, pottery, charcoal) excavated
inside the cave, which allows the comparison between in situ evidence of
human occupation and of climate change. This approach shows that the timing
of a prolonged drought at ca.  4400–3800 yr BP blankets the onset of cave
abandonment shortly after ca. 4403 cal yr BP, supporting the hypothesis that
a climate anomaly may have played a role in this cultural disruption.</p></abstract-html>
<ref-html id="bib1.bib1"><label>1</label><mixed-citation>
Bar-Matthews, M. and Ayalon, A.: Mid-Holocene climate variations revealed
by high-resolution speleothem records from Soreq Cave, Israel and their
correlation with cultural changes, Holocene, 21, 163–171, 2011.
</mixed-citation></ref-html>
<ref-html id="bib1.bib2"><label>2</label><mixed-citation>
Bar-Matthews, M., Ayalon, A., and Kaufman, A.: Late Quaternary Paleoclimate
in the Eastern Mediterranean Region from Stable Isotope Analysis of
Speleothems at Soreq Cave, Israel, Quat. Res., 47, 155–168, 1997.
</mixed-citation></ref-html>
<ref-html id="bib1.bib3"><label>3</label><mixed-citation>
Bar-Matthews, M., Ayalon, A., Gilmour, M., Matthews, A., and Hawkesworth, C.
J.: Sea–land oxygen isotopic relationships from planktonic foraminifera and
speleothems in the Eastern Mediterranean region and their implication for
paleorainfall during interglacial intervals, Geochim. Cosmochim. Ac., 67,
3181–3199, 2003.
</mixed-citation></ref-html>
<ref-html id="bib1.bib4"><label>4</label><mixed-citation>
Berkelhammer, M., Sinha, A., Stott, L., Cheng, H., Pausata, F. S. R., and
Yoshimura, K.: An abrupt shift in the Indian Monsoon 4000 years ago, in:
Climates, Landscapes, and Civilizations, edited by: Giosan, L., Fuller, D. Q., Nicoll,
K., Flad, R. K., and Clift, P. D., American Geophysical Union,
Washington, DC, 75–87, 2013.
</mixed-citation></ref-html>
<ref-html id="bib1.bib5"><label>5</label><mixed-citation>
Bond, G., Kromer, B., Beer, J., Muscheler, R., Evans, M. N., Showers, W.,
Hoffmann, S., Lotti-Bond, R., Hajdas, I., and Bonani, G.: Persistent Solar
Influence on North Atlantic Climate During the Holocene, Science, 294,
2130–2136, 2001.
</mixed-citation></ref-html>
<ref-html id="bib1.bib6"><label>6</label><mixed-citation>
Booth, R. K., Jackson, S. T., Forman, S. L., Kutzbach, J. E., E.A. Bettis,
I., Kreig, J., and Wright, D. K.: A severe centennial-scale drought in
midcontinental North America 4200 years ago and apparent global linkages,
Holocene, 15, 321–328, 2005.
</mixed-citation></ref-html>
<ref-html id="bib1.bib7"><label>7</label><mixed-citation>
Carrión, J. S.: Patterns and processes of Late Quaternary environmental
change in a montane region of southwestern Europe, Quat. Sci. Rev., 21,
2047–2066, 2002.
</mixed-citation></ref-html>
<ref-html id="bib1.bib8"><label>8</label><mixed-citation>
Cheng, H., Edwards, L. R., Shen, C. C., Polyak, V. J., Asmerom, Y.,
Woodhead, J., Hellstrom, J., Wang, Y., Kong, X., Spötl, C., Wang, X.,
and Alexander Jr, E. C.: Improvements in <Superscript>230</Superscript>Th dating, <Superscript>230</Superscript>Th and
<Superscript>234</Superscript>U half-life values, and U-Th isotopic measurements by
multi-collector inductively coupled plasma mass spectrometry, Earth Planet.
Sci. Lett., 371–372, 82–91, 2013.
</mixed-citation></ref-html>
<ref-html id="bib1.bib9"><label>9</label><mixed-citation>
Coombes, P. and Barber, K.: Environmental determinism in Holocene research:
causality or coincidence?, Area, 37, 303–311, 2005.
</mixed-citation></ref-html>
<ref-html id="bib1.bib10"><label>10</label><mixed-citation>
Cottereau, E., Arnold, M., Moreau, C., Baque, D., Bavay, D., Caffy, I.,
Comby, C., Dumoulin, J.-P., Hain, S., Perron, M., Salomon, J., and Setti,
V.: Artemis, the New 14C AMS14 in Saclay, France, Radiocarbon, 49, 291–299,
2007.
</mixed-citation></ref-html>
<ref-html id="bib1.bib11"><label>11</label><mixed-citation>
Cullen, H. M., deMenocal, P. B., Hemming, S., Hemming, G., Brown, F. H.,
Guilderson, T., and Sirocko, F.: Climate change and the collapse of the
Akkadian empire: Evidence from the deep sea, Geology, 28, 379–382, 2000.
</mixed-citation></ref-html>
<ref-html id="bib1.bib12"><label>12</label><mixed-citation>
Cuthbert, M. O., Baker, A., Jex, C. N., Graham, P. W., Treble, P. C.,
Andersen, M. S., and Acworth, R. I.: Drip water isotopes in semi-arid karst:
Implications for speleothem paleoclimatology, Earth Planet. Sci. Lett., 395,
194–204, 2014.
</mixed-citation></ref-html>
<ref-html id="bib1.bib13"><label>13</label><mixed-citation>
deMenocal, P., Ortiz, J., Guilderson, T., Adkins, J., Sarnthein, M., Baker,
L., and Yarusinsky, M.: Abrupt onset and termination of the African Humid
Period: rapid climate responses to gradual insolation forcing, Quat. Sci.
Rev., 19, 347–361, 2000.
</mixed-citation></ref-html>
<ref-html id="bib1.bib14"><label>14</label><mixed-citation>
Dixit, Y., Hodell, D. A., and Petrie, C. A.: Abrupt weakening of the summer
monsoon in northwest India  ∼  4100 yr ago, Geology, 42,
339–342, 2014.
</mixed-citation></ref-html>
<ref-html id="bib1.bib15"><label>15</label><mixed-citation>
Drysdale, R., Zanchetta, G., Hellstrom, J., Maas, R., Fallick, A., Pickett,
M., Cartwright, I., and Piccini, L.: Late Holocene drought responsible for
the collapse of Old World civilizations is recorded in an Italian cave
flowstone, Geology, 34, 101–104, 2006.
</mixed-citation></ref-html>
<ref-html id="bib1.bib16"><label>16</label><mixed-citation>
Drysdalea, R. N., Zanchetta, G., Hellstrom, J. C., Fallick, A. E., Zhao,
J.-x., Isola, I., and Bruschi, G.: Palaeoclimatic implications of the growth
history and stable isotope (<Emphasis Type="Italic">δ</Emphasis><Superscript>18</Superscript>O and <Emphasis Type="Italic">δ</Emphasis><Superscript>13</Superscript>C)
geochemistry of a Middle to Late Pleistocene stalagmite from central-western
Italy, Earth Planet. Sci. Lett., 227, 215–229, 2004.
</mixed-citation></ref-html>
<ref-html id="bib1.bib17"><label>17</label><mixed-citation>
Edwards, R. L., Chen, J. H., and Wasserburg, G. J.:
<Superscript>238</Superscript>U-<Superscript>234</Superscript>U-<Superscript>230</Superscript>Th-<Superscript>232</Superscript>Th systematics and the precise
measurements of time over the past 500 000 years., Earth Planet. Sci. Lett.,
81, 175–192, 1987.
</mixed-citation></ref-html>
<ref-html id="bib1.bib18"><label>18</label><mixed-citation>
Fairchild, I. J. and Baker, A.: Speleothem science – from process to past
environments, John Wiley &amp; Sons, Ltd, Chichester, UK, 2012.
</mixed-citation></ref-html>
<ref-html id="bib1.bib19"><label>19</label><mixed-citation>
Fairchild, I. J., Borsato, A., Tooth, A. F., Frisia, S., Hawkesworth, C. J.,
Huang, Y. M., McDermott, F., and Spiro, B.: Controls on trace element
(Sr–Mg) compositions of carbonate cave waters: implications for speleothem
climatic records, Chem. Geol., 166, 255–269, 2000.
</mixed-citation></ref-html>
<ref-html id="bib1.bib20"><label>20</label><mixed-citation>
Faith, J. T.: Late Pleistocene and Holocene mammal extinctions on
continental Africa, Earth-Sci. Rev., 128, 105–121, 2014.
</mixed-citation></ref-html>
<ref-html id="bib1.bib21"><label>21</label><mixed-citation>
Finné, M., Holmgren, K., Sundqvist, H. S., Weiberg, E., and Lindblom,
M.: Climate in the eastern Mediterranean, and adjacent regions, during the
past 6000 years – A review, J. Archaeol. Sci., 38, 3153–3173, 2011.
</mixed-citation></ref-html>
<ref-html id="bib1.bib22"><label>22</label><mixed-citation>
Genty, D., Baker, A., Massault, M., Proctor, C., Gilmour, M., and
Pons-Branchu, E.: Dead carbon in stalagmites: Carbonate bedrock
paleodissolution vs. ageing of soil organic matter. Implications for
<Superscript>13</Superscript>C variations in speleothems, Geochim. Cosmochim. Ac., 65, 3443–3457,
2001a.
</mixed-citation></ref-html>
<ref-html id="bib1.bib23"><label>23</label><mixed-citation>
Genty, D., Baker, A., and Vokal, B.: Intra- and inter-annual growth rate of
modern stalagmites, Chem. Geol., 176, 191–212, 2001b.
</mixed-citation></ref-html>
<ref-html id="bib1.bib24"><label>24</label><mixed-citation>
Genty, D., Labuhn, I., Hoffmann, G., Danis, P. A., Mestre, O., Bourges, F.,
Wainer, K., Massault, M., Régnier, E., Orengo, P., Falourd, S., and
Minster, B.: Rainfall and cave water isotopic relationships in two
South-France sites, Geochim. Cosmochim. Ac., 131, 323–343, 2014.
</mixed-citation></ref-html>
<ref-html id="bib1.bib25"><label>25</label><mixed-citation>
Hendy, C. H.: The isotopic geochemistry of speleothems-I, The calculation of
the effects of different modes of formation on the isotopic composition of
speleothems and their applicability as palaeoclimatic indicators, Geochim. Cosmochim. Ac., 35, 801–824, 1971.
</mixed-citation></ref-html>
<ref-html id="bib1.bib26"><label>26</label><mixed-citation>
Hoerling, M. and Kumar, A.: The perfect ocean for drought, Science, 299,
691–694, 2003.
</mixed-citation></ref-html>
<ref-html id="bib1.bib27"><label>27</label><mixed-citation>
IAEA: Isotopic composition of precipitation in the Mediterranean Basin in
relation to air circulation patterns and climate: final report of a
coordinated research project, 2000–2004, International Atomic Energy Agency,
Vienna, Austria, 2005.
</mixed-citation></ref-html>
<ref-html id="bib1.bib28"><label>28</label><mixed-citation>
Jackson, M. G., Oskarsson, N., Tronnes, R. G., McManus, J. F., Oppo, D. W.,
Gronvold, K., Hart, S. R., and Sachs, J. P.: Holocene loess deposition in
Iceland: evidence for millennial-scale atmosphre-ocean coupling in the North
Atlantic, Geology, 33, 509–512, 2005.
</mixed-citation></ref-html>
<ref-html id="bib1.bib29"><label>29</label><mixed-citation>
Jaffey, A. H., Flynn, K. F., Glendenin, L. E., Bentley, W. C., and Essling,
A. M.: Precision measurement of half-lives and specific activities of
<Superscript>235</Superscript>U and <Superscript>238</Superscript>U, Phys. Rev. C, 4, 1889–1906, 1971.
</mixed-citation></ref-html>
<ref-html id="bib1.bib30"><label>30</label><mixed-citation>
Jalut, G., Esteban Amat, A., Bonnet, L., Gauquelin, T., and Fontugne, M.:
Holocene climatic changes in the Western Mediterranean, from south-east
France to south-east Spain, Palaeogeogr. Palaeocl. Palaeoecol., 160,
255–290, 2000.
</mixed-citation></ref-html>
<ref-html id="bib1.bib31"><label>31</label><mixed-citation>
Johnson, K. R., Hu, C. Y., Belshaw, N. S., and Henderson, G. M.: Seasonal
trace-element and stable-isotope variations in a Chinese speleothem: The
potential for high-resolution paleomonsoon reconstruction, Earth Planet.
Sci. Lett., 244, 394–407, 2006.
</mixed-citation></ref-html>
<ref-html id="bib1.bib32"><label>32</label><mixed-citation>
Kaufman, A., Wasserburg, G. J., Porcelli, D., Bar-Matthews, M., Ayalon, A.,
and Halicz, L.: U-Th isotope systematics from the Soreq cave, Israel and
climatic correlations, Earth Planet. Sci. Lett., 156, 141–155, 1998.
</mixed-citation></ref-html>
<ref-html id="bib1.bib33"><label>33</label><mixed-citation>
Kherbouche, F., Hachi, S., Abdessadok, S., Sehil, N., Merzoug, S., Sari, L.,
Benchernine, R., Chelli, R., Fontugne, M., Barbaza, M., and Roubet, C.:
Preliminary results from excavations at Gueldaman Cave GLD1 (Akbou,
Algeria), Quat. Int., 320, 109–124, 2014.
</mixed-citation></ref-html>
<ref-html id="bib1.bib34"><label>34</label><mixed-citation>
Kröpelin, S., Verschuren, D., Lézine, A.-M., Eggermont, H., Cocquyt,
C., Francus, P., Cazet, J.-P., Fagot, M., Rumes, B., Russell, J. M., Darius,
F., Conley, D. J., Schuster, M., Suchodoletz, H. v., and Engstrom, D. R.:
Climate-Driven Ecosystem Succession in the Sahara: The Past 6000 Years,
Science, 320, 765–768, 2006.
</mixed-citation></ref-html>
<ref-html id="bib1.bib35"><label>35</label><mixed-citation>
Lachniet, M. S.: Climatic and environmental controls on speleothem
oxygen-isotope values, Quat. Sci. Rev., 28, 412–432, 2009.
</mixed-citation></ref-html>
<ref-html id="bib1.bib36"><label>36</label><mixed-citation>
Magny, M., Vannière, B., Calo, C., Millet, L., Leroux, A., Peyron, O.,
Zanchetta, G., La Mantia, T., and Tinner, W.: Holocene hydrological changes
in south-western Mediterranean as recorded by lake-level fluctuations at
Lago Preola, a coastal lake in southern Sicily, Italy, Quat. Sci. Rev., 30,
2459–2475, 2011.
</mixed-citation></ref-html>
<ref-html id="bib1.bib37"><label>37</label><mixed-citation>
Magny, M., Combourieu-Nebout, N., de Beaulieu, J. L., Bout-Roumazeilles, V., Colombaroli, D., Desprat, S., Francke, A.,
Joannin, S., Ortu, E., Peyron, O., Revel, M., Sadori, L., Siani, G., Sicre, M. A., Samartin, S., Simonneau, A., Tinner, W., Vannière, B.,
Wagner, B., Zanchetta, G., Anselmetti, F., Brugiapaglia, E., Chapron, E., Debret, M., Desmet, M., Didier, J., Essallami, L., Galop, D., Gilli, A.,
Haas, J. N., Kallel, N., Millet, L., Stock, A., Turon, J. L., and Wirth, S.: North-south palaeohydrological contrasts in the central Mediterranean
during the Holocene: tentative synthesis and working hypotheses, Clim. Past, 9, 2043–2071, <a href="http://dx.doi.org/10.5194/cp-9-2043-2013" target="_blank">doi:10.5194/cp-9-2043-2013</a>, 2013.
</mixed-citation></ref-html>
<ref-html id="bib1.bib38"><label>38</label><mixed-citation>
Martrat, B., Grimalt, J. O., Lopez-Martizez, C., Cacho, I., Sierro, F. J.,
Flores, J. A., Zahn, R., Canals, M., Curtis, J. H., and Hodell, D. A.:
Abrupt temperature changes in the Western Mediterranean over the past
250 000 years, Science, 306, 1762–1765, 2004.
</mixed-citation></ref-html>
<ref-html id="bib1.bib39"><label>39</label><mixed-citation>
Mayewski, P. A., Rohling, E. E., Stager, J. C., Karlén, W., Maasch, K.
A., Meeker, L. D., Meyerson, E. A., Gasse, F., Kreveld, S. V., Holmgren, K.,
Lee-Thorp, J., Rosqvist, G., Rack, F., Staubwasser, M., Schneider, R. R.,
and Steig, E. J.: Holocene climate variability, Quat. Res., 62, 243–255,
2004.
</mixed-citation></ref-html>
<ref-html id="bib1.bib40"><label>40</label><mixed-citation>
McDermott, F.: Palaeo-climate reconstruction from stable isotope variations
in speleothems: a review, Quat. Sci. Rev., 23, 901–918, 2004.
</mixed-citation></ref-html>
<ref-html id="bib1.bib41"><label>41</label><mixed-citation>
McGee, D., deMenocal, P. B., Winckler, G., W.Stuut, J. B., and Bradtmiller,
L. I.: The magnitude, timing and abruptness of changes in North African dust
deposition over the last 20 000 yr, Earth Planet. Sci. Lett., 371–372,
163–176, 2013.
</mixed-citation></ref-html>
<ref-html id="bib1.bib42"><label>42</label><mixed-citation>
Mickler, P. J., Banner, J. L., Stern, L., Asmeron, Y., Edwards, R. L., and
Ito, E.: Stable isotope variations in modern tropical speleothems:
Evaluating equilibrium vs. kinetic isotope effects, Geochim. Cosmochim. Ac., 68, 4381–4393, 2004.
</mixed-citation></ref-html>
<ref-html id="bib1.bib43"><label>43</label><mixed-citation>
Mickler, P. J., Stern, L. A., and Banner, J. L.: Large kinetic isotope
effects in modern speleothems, Geol. Soc. Am. Bull., 118, 65–81, 2006.
</mixed-citation></ref-html>
<ref-html id="bib1.bib44"><label>44</label><mixed-citation>
Morrellon, M., zvalero-Garces, B., Vegas-Vilarrubia, T., Gonzalez-Samperiz,
P., Romero, O., Delgado-Huertas, A., Mata, P., Moreno, A., Rico, M., and
Corella, J. P.: Lateglacial and Holocene paleohydrology in the western
Mediterranean region: the Lake Estanya record (NE Spain), Quat. Sci. Rev.,
28, 2582–2599, 2009.
</mixed-citation></ref-html>
<ref-html id="bib1.bib45"><label>45</label><mixed-citation>
Regattieri, E., Zanchetta, G., Drysdale, R. N., Isola, I., Hellstrom, J. C.,
and Dallai, L.: Lateglacial to Holocene trace element record (Ba, Mg, Sr)
from Corchia Cave (Apuan Alps, central Italy): paleoenvironmental
implications, J. Quat. Sci., 29, 381–392, 2014.
</mixed-citation></ref-html>
<ref-html id="bib1.bib46"><label>46</label><mixed-citation>
Reimer, P. J., Bard, E., Bayliss, A., Beck, J. W., Blackwell, P. J., Bronk
Ramsey, C., Buck, C. E., Cheng, H., Edwards, R. L., Friedrich, M., Grootes,
P. M., Guilderson, T. P., Haflidason, H., Hajdas, I., Hatté, C., Heaton,
T. J., Hoffmann, D. L., Hogg, A. G., Hughen, K. A., Kaiser, K. F., Kromer,
B., Manning, S. W., Niu, M., Reimer, R. W., Richards, D. A., Scott, E. M.,
Southon, J. R., Staff, R. A., Turney, C. S. M., and van der Plicht, J.:
IntCal13 and Marine13 radiocarbon age calibration curves 0–52 000 years cal
BP, Radiocarbon, 55, 1869–1887, 2013.
</mixed-citation></ref-html>
<ref-html id="bib1.bib47"><label>47</label><mixed-citation>
Riehla, S., Pustovoytov, K. E., Weippert, H., Klett, S., and Hole, F.:
Drought stress variability in ancient Near Eastern agricultural systems
evidenced by <Emphasis Type="Italic">δ</Emphasis><Superscript>13</Superscript>C in barley grain, P. Natl. Acad. Sci. USA, 111, 12348–12353,
2014.
</mixed-citation></ref-html>
<ref-html id="bib1.bib48"><label>48</label><mixed-citation>
Roberts, N., Brayshaw, D., Kuzucuoglu, C., Perez, R., and Sadori, L.: The
mid-Holocene climatic transition in the Mediterranean: Causes and
consequences, Holocene, 21, 3–13, 2011.
</mixed-citation></ref-html>
<ref-html id="bib1.bib49"><label>49</label><mixed-citation>
Roland, T. P.: Was there a “4.2 kyr event” in Great Britain and Ireland?
Evidence from the peatland record, PhD, University of Exeter, Exeter, UK,
2012.
</mixed-citation></ref-html>
<ref-html id="bib1.bib50"><label>50</label><mixed-citation>
Sadori, L. and Narcisi, B.: The postglacial record of environmental history
from Lago di Pergusa, Sicily, Holocene, 11, 655–672, 2001.
</mixed-citation></ref-html>
<ref-html id="bib1.bib51"><label>51</label><mixed-citation>
Sadori, L. and Giardini, M.: Charcoal analysis, a method to study vegetation
and climate of the Holocene: The case of Lago di Pergusa (Sicily, Italy),
Geobios, 40, 173–180, 2007.
</mixed-citation></ref-html>
<ref-html id="bib1.bib52"><label>52</label><mixed-citation>
Sadori, L., Jahns, S., and Peyron, O.: Mid-Holocene vegetation history of
the central Mediterranean,  Holocene, 21, 117–129, 2011.
</mixed-citation></ref-html>
<ref-html id="bib1.bib53"><label>53</label><mixed-citation>
Scholz, D. and Hoffmann, D. L.: StalAge – An algorithm designed for
construction of speleothem age models, Quat. Geochronol., 6, 369–382, 2011.
</mixed-citation></ref-html>
<ref-html id="bib1.bib54"><label>54</label><mixed-citation>
Seager, R., Ting, M., Held, I., Kushnir, Y., Lu, J., Vecchi, G., Huang, H.
P., Harnik, N., Leetmaa, A., Lau, N. C., Li, C., Velez, J., and Naik, N.:
Model projections of an imminent transition to a more arid climate in
southwestern North America, Science, 316, 1181–1184, 2007.
</mixed-citation></ref-html>
<ref-html id="bib1.bib55"><label>55</label><mixed-citation>
Staubwasser, M. and Weiss, H.: Holocene climate and cultural evolution in
late prehistoric–early historic West Asia, Quat. Res., 66, 372–378, 2006.
</mixed-citation></ref-html>
<ref-html id="bib1.bib56"><label>56</label><mixed-citation>
Staubwasser, M., Sirocko, F., Grootes, P., and Segl, M.: Climate change at
the 4.2 ka BP termination of the Indus valley civilization and Holocene
south Asian monsoon variability, Geophys. Res. Lett., 30, 1–4, 2003.
</mixed-citation></ref-html>
<ref-html id="bib1.bib57"><label>57</label><mixed-citation>
Stoll, H. M., Moreno, A., Mendez-Vicente, A., Gonzalez-Lemos, S.,
Jimenez-Sanchez, M., Dominguez-Guesta, M. J., Edwards, R. L., Cheng, H., and
Wang, X.: Paleoclimate and growth rates of speleothems in the northwestern
Iberian peninsula over the last two glacial cycles, Quat. Res., 80, 284–290,
2013.
</mixed-citation></ref-html>
<ref-html id="bib1.bib58"><label>58</label><mixed-citation>
Tindall, J. C. and Valdes, P. J.: Modeling the 8.2 ka event using a coupled
atmosphere-ocean GCM, Global Planet. Change, 79, 312–321, 2011.
</mixed-citation></ref-html>
<ref-html id="bib1.bib59"><label>59</label><mixed-citation>
Touchan, R., Anchukaitis, K. J., Meko, D. M., Attalah, S., Baisan, C., and
Aloui, A.: Long term context for recent drought in northwestern Africa,
Geophys. Res. Lett., 35, L13705, <a href="http://dx.doi.org/10.1029/2008GL034264" target="_blank">doi:10.1029/2008GL034264</a>, 2008.
</mixed-citation></ref-html>
<ref-html id="bib1.bib60"><label>60</label><mixed-citation>
Touchan, R., Anchukaitis, K. J., Meko, D. M., Sabir, M., Attalah, S., and
Aloui, A.: Spatiotemporal drought variability in northwestern Africa over
the last nine centuries, Clim. Dyn., 37, 237–252, 2011.
</mixed-citation></ref-html>
<ref-html id="bib1.bib61"><label>61</label><mixed-citation>
Vaks, A., Woodhead, J., Bar-Matthews, M., Ayalon, A., Cliff, R. A.,
Zilberman, T., Matthews, A., and Frumkin, A.: Pliocene–Pleistocene climate
of the northern margin of Saharan–Arabian Desert recorded in speleothems
from the Negev Desert, Israel, Earth Planet. Sci. Lett., 368, 88–100, 2013.
</mixed-citation></ref-html>
<ref-html id="bib1.bib62"><label>62</label><mixed-citation>
Wanner, H., Beer, J., Bütikofer, J., Crowley, T. J., Cubasch, U.,
Flückiger, J., Goosse, H., Grosjean, M., Joos, F., Kaplan, J. O.,
Küttel, M., Müller, S. A., Prentice, C. I., Solomina, O., Stocker,
T. F., Tarasov, P., Wagner, M., and Widmann, M.: Mid- to Late Holocene
climate change: an overview, Quat. Sci. Rev., 27, 1791–1828, 2008.
</mixed-citation></ref-html>
<ref-html id="bib1.bib63"><label>63</label><mixed-citation>
Weiss, H. and Bradley, R. S.: What Drives Societal Collapse?, Science, 291,
609–610, 2000.
</mixed-citation></ref-html>
<ref-html id="bib1.bib64"><label>64</label><mixed-citation>
Weiss, H., Courty, M.-A., Wetterstrom, W., Guichard, F., Senior, L., Meadow,
R., and Curnow, A.: The genesis and collapse of third millennium North
Mesopotamian civilization, Science, 261, 995–1004, 1993.
</mixed-citation></ref-html>
<ref-html id="bib1.bib65"><label>65</label><mixed-citation>
Wiener, M. H.: The interaction of climate change and agency in the collapse
of civilizations ca. 2300–2000 BC, Radiocarbon, 56, S1–S16,
<a href="http://dx.doi.org/10.2458/azu_rc.56.18325" target="_blank">doi:10.2458/azu_rc.56.18325</a>, 2014.
</mixed-citation></ref-html>
<ref-html id="bib1.bib66"><label>66</label><mixed-citation>
Zanchetta, G., Drysdale, R. N., Hellstrom, J. C., Fallick, A. E., Isola, I.,
Gagan, M. K., and Paresch, M. T.: Enhanced rainfall in the Western
Mediterranean during deposition of sapropel S1: stalagmite evidence from
Corchia cave (Central Italy), Quat. Sci. Rev., 26, 279–286, 2007.

</mixed-citation></ref-html>
<ref-html id="bib1.bib67"><label>67</label><mixed-citation>
Zanchetta, G., Giraudi, C., Sulpizio, R., Magny, M., Drysdale, R. N., and
Sadori, L.: Constraining the onset of the Holocene “Neoglacial” over the
central Italy using tephra layers, Quat. Res., 78, 236–247, 2012a.
</mixed-citation></ref-html>
<ref-html id="bib1.bib68"><label>68</label><mixed-citation>
Zanchetta, G., van Welden, A., Baneschi, I., Drysdale, R. N., Sadori, L.,
Roberts, N., Giardini, M., Beck, C., and Pascucci, V.: Multiproxy record for
the last 4500 years from Lake Shkodra (Albania/Montenegro), J. Quat. Sci.,
27, 780–789, 2012b.
</mixed-citation></ref-html>
<ref-html id="bib1.bib69"><label>69</label><mixed-citation>
Zanchetta, G., Bar-Matthews, M., Drysdale, R. N., Lionello, P., Ayalon, A.,
Hellstrom, J. C., Isola, I., and Regattieri, E.: Coeval dry events in the
central and eastern Mediterranean basin at 5.2 and 5.6 ka recorded in
Corchia (Italy) and Soreq caves (Israel) speleothems, Global Planet. Change,
122, 130–139, 2014.
</mixed-citation></ref-html>--></article>
