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      <ref-type name="Journal Article">17</ref-type>
      <work-type>ACL : Articles dans des revues avec comité de lecture répertoriées par l'AERES</work-type>
      <contributors>
        <authors>
          <author>
            <style face="normal" font="default" size="100%">Schepper, R.</style>
          </author>
          <author>
            <style face="bold" font="default" size="100%">Almar, Rafaël</style>
          </author>
          <author>
            <style face="normal" font="default" size="100%">Bergsma, E.</style>
          </author>
          <author>
            <style face="normal" font="default" size="100%">de Vries, S.</style>
          </author>
          <author>
            <style face="normal" font="default" size="100%">Reniers, A.</style>
          </author>
          <author>
            <style face="normal" font="default" size="100%">Davidson, M.</style>
          </author>
          <author>
            <style face="normal" font="default" size="100%">Splinter, K.</style>
          </author>
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      <titles>
        <title>Modelling cross-shore shoreline change on multiple timescales and their interactions</title>
        <secondary-title>Journal of Marine Science and Engineering</secondary-title>
      </titles>
      <pages>582 [27 p.]</pages>
      <keywords>
        <keyword>equilibrium shoreline modelling</keyword>
        <keyword>ShoreFor</keyword>
        <keyword>cross-shore sediment</keyword>
        <keyword>transport</keyword>
        <keyword>multiple timescales</keyword>
        <keyword>AUSTRALIE</keyword>
        <keyword>VIET NAM</keyword>
        <keyword>NOUVELLE ZELANDE</keyword>
      </keywords>
      <dates>
        <year>2021</year>
      </dates>
      <call-num>fdi:010082246</call-num>
      <language>ENG</language>
      <periodical>
        <full-title>Journal of Marine Science and Engineering</full-title>
      </periodical>
      <accession-num>ISI:000667022200001</accession-num>
      <number>6</number>
      <electronic-resource-num>10.3390/jmse9060582</electronic-resource-num>
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          <url>https://www.documentation.ird.fr/hor/fdi:010082246</url>
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          <url>https://horizon.documentation.ird.fr/exl-doc/pleins_textes/2021-08/010082246.pdf</url>
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      <volume>9</volume>
      <remote-database-provider>Horizon (IRD)</remote-database-provider>
      <abstract>In this paper, a new approach to model wave-driven, cross-shore shoreline change incorporating multiple timescales is introduced. As a base, we use the equilibrium shoreline prediction model ShoreFor that accounts for a single timescale only. High-resolution shoreline data collected at three distinctly different study sites is used to train the new data-driven model. In addition to the direct forcing approach used in most models, here two additional terms are introduced: a time-upscaling and a time-downscaling term. The upscaling term accounts for the persistent effect of short-term events, such as storms, on the shoreline position. The downscaling term accounts for the effect of long-term shoreline modulations, caused by, for example, climate variability, on shorter event impacts. The multi-timescale model shows improvement compared to the original ShoreFor model (a normalized mean square error improvement during validation of 18 to 59%) at the three contrasted sandy beaches. Moreover, it gains insight in the various timescales (storms to inter-annual) and reveals their interactions that cause shoreline change. We find that extreme forcing events have a persistent shoreline impact and cause 57-73% of the shoreline variability at the three sites. Moreover, long-term shoreline trends affect short-term forcing event impacts and determine 20-27% of the shoreline variability.</abstract>
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      <custom1>UR065</custom1>
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