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	    Raweb 
	    2016</a> | <a href="http://www.inria.fr/en/teams/virtual-plants">Presentation of the Project-Team VIRTUAL PLANTS</a> | <a href="http://team.inria.fr/virtualplants">VIRTUAL PLANTS Web Site
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        <h2>Section: 
      Overall Objectives</h2>
        <h3 class="titre3">Overall Objectives</h3>
        <p>The <a href="https://team.inria.fr/virtualplants/">Virtual
Plants</a> team is a joint team between
<a href="http://www.inria.fr">Inria</a>, <a href="http://www.cirad.fr">CIRAD</a>
and <a href="http://www.inra.fr">INRA</a> located in
Montpellier. The long-term focus of the project is to study plant
development, its modulation by the environment and its control by genetic processes.</p>
        <p>Plants are branching living organisms that develop throughout their
lifetimes. Organs are created by small embryogenetic regions at the
tip of each axis, called <i>apical meristems</i>. In the project
Virtual Plants, we are interested in studying plant apical meristem
functioning and development. We develop a detailed analysis of
apical meristem processes, based on advanced mathematical and
computational methods and tools, to get a deeper and
better understanding of plant development.</p>
        <p>This study is performed from two complementary perspectives.</p>
        <ul>
          <li>
            <p class="notaparagraph"><a name="uid4"> </a>First, at a macroscopic level, we develop an extensive
methodology to analyze <i>the structures produced by
meristems</i>. This can be seen as a methodology that aims to solve
an inverse problem in which one tries to infer meristem
functioning from the complex structures they produce. This
analysis is carried out at different spatial and temporal scales.</p>
          </li>
          <li>
            <p class="notaparagraph"><a name="uid5"> </a>Second, at a more microscopic level, we intend to exploit the
recent spectacular scientific and technological progresses in
developmental biology in order to understand how physiological and
genetic processes control meristem growth at cell scale.</p>
          </li>
        </ul>
        <p>To develop these two scientific axes, we carry out research in three
main categories of models and methods:</p>
        <ul>
          <li>
            <p class="notaparagraph"><a name="uid6"> </a>multiscale models for the spatial (topological and
geometrical) representation of structured biological objects
(which range from meristem tissues to branching structures),</p>
          </li>
          <li>
            <p class="notaparagraph"><a name="uid7"> </a>methods and models for deciphering the organization of these
complex biological objects,</p>
          </li>
          <li>
            <p class="notaparagraph"><a name="uid8"> </a>and models for morphogenesis.</p>
          </li>
        </ul>
        <p>In order to make our methods and models available to our partners,
all our tools are integrated in a common software platform:
<i>V-Plants</i>. Based on this platform, we coordinate
the development of an open software platform, <i>OpenAlea</i>, for
plant modeling at a national and international level.</p>
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