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      <div class="TdmEntry">Overall Objectives<ul><li class="tdmActPage"><a href="./uid3.html">Objectives</a></li></ul></div>
      <div class="TdmEntry">Research Program<ul><li><a href="uid5.html&#10;&#9;&#9;  ">Modeling of complex environment</a></li><li><a href="uid6.html&#10;&#9;&#9;  ">Analysis of interconnected systems</a></li><li><a href="uid9.html&#10;&#9;&#9;  ">Stabilization of interconnected systems</a></li><li><a href="uid13.html&#10;&#9;&#9;  ">Synthesis of reduced complexity controllers</a></li></ul></div>
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      <div class="TdmEntry">New Results<ul><li><a href="uid20.html&#10;&#9;&#9;  ">Characterizing the Codimension of Zero Singularities for Time-Delay Systems: A Link with Vandermonde and Birkhoff Incidence Matrices</a></li><li><a href="uid21.html&#10;&#9;&#9;  ">Tracking the Algebraic Multiplicity of
Crossing Imaginary Roots for Generic Quasipolynomials: A
Vandermonde-Based Approach</a></li><li><a href="uid22.html&#10;&#9;&#9;  ">Coprimeness of fractional representations</a></li><li><a href="uid23.html&#10;&#9;&#9;  ">Output-feddback control design for
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Myeloid Leukemia</a></li><li><a href="uid44.html&#10;&#9;&#9;  ">Ananlysis of Dengue Fever SIR Model with time-varying parameters</a></li></ul></div>
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	    2016</a> | <a href="http://www.inria.fr/en/teams/disco">Presentation of the Project-Team DISCO</a> | <a href="http://team.inria.fr/disco/">DISCO Web Site
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        <h2>Section: 
      Overall Objectives</h2>
        <h3 class="titre3">Objectives</h3>
        <p>The goal of the project is to better understand and well formalize the effects of complex environments on the dynamics of the interconnections, as well as to develop new methods and
techniques for the analysis and control of such systems.</p>
        <p>It is well-known that the interconnection of dynamic systems has as
consequence an increased complexity of the behavior of the total system.</p>
        <p>In a simplified way, as the concept of dynamics is well-understood, the interconnections can be seen as
associations (by connections of materials or information flows) of
distinct systems to ensure a pooling of the resources with the aim of obtaining a better operation with the
constraint of continuity of the service in the event of a fault. In
this context, the environment can be seen as a collection of elements,
structures or systems,
natural or artificial constituting the neighborhood of a given
system. The development of interactive games through
communication networks, control from distance (e.g. remote surgical
operations) or in hostile environment (e.g. robots, drones), as
well as the current trend of large scale integration of distribution
(and/or transport and/or decision) and open information systems
with systems of production, lead to new modeling schemes in problems where
the dynamics of the environment have to be taken into account.</p>
        <p>In order to tackle the control problems arising in the above examples,
the team investigates new theoretical methods, develops new
algorithms and implementations dedicated to these techniques.</p>
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