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    <meta name="description" content="New Results - Scaling Methods"/>
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    <meta name="dc.creator" content="Philippe Robert"/>
    <meta name="dc.creator" content="Wen Sun"/>
    <meta name="dc.creator" content="Mohammadreza Aghajani"/>
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    <meta name="dc.date" content="(SCHEME=ISO8601) 2014-01"/>
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	    Raweb 
	    2014</a> | <a href="http://www.inria.fr/en/teams/rap">Presentation of the Project-Team RAP</a> | <a href="http://www-rocq.inria.fr/rap/">RAP Web Site
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        <h2>Section: 
      New Results</h2>
        <h3 class="titre3">Scaling Methods</h3>
        <p class="participants"><span class="part">Participants</span> :
	Philippe Robert, Wen Sun, Mohammadreza Aghajani.</p>
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        <h4 class="titre4">Fluid Limits in Wireless Networks</h4>
        <p>This is a collaboration with Amandine Veber (CMAP, École Polytechnique). The goal is to investigate the stability properties of wireless networks when the bandwidth allocated to a node is proportional to a function of its backlog: if a node of this network has <span class="math"><math xmlns="http://www.w3.org/1998/Math/MathML"><mi>x</mi></math></span> requests to transmit, then it receives a fraction of the capacity proportional to <span class="math"><math xmlns="http://www.w3.org/1998/Math/MathML"><mrow><mo form="prefix">log</mo><mo>(</mo><mn>1</mn><mo>+</mo><mi>x</mi><mo>)</mo></mrow></math></span>, the logarithm of its current load. A fluid scaling analysis of such a network is presented. We have shown that the interaction of several time scales plays an important role in the evolution of such a system, in particular its coordinates may live on very different time and space scales. As a consequence, the associated stochastic processes turn out to have unusual scaling behaviors which give an interesting fairness property to this class of algorithms. A heavy traffic limit theorem for the invariant distribution has also been proved. A generalization to the resource sharing algorithm for which the <span class="math"><math xmlns="http://www.w3.org/1998/Math/MathML"><mo form="prefix">log</mo></math></span> function is replaced by an increasing function. This year we completed the analysis of a star network topology with multiple nodes. Several scalings were used to describe the fluid limit behaviour.</p>
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        <h4 class="titre4">The Time Scales of a Transient Network</h4>
        <p>The Distributed Hash Table (DHTs) consists of a large set of nodes connected through the Internet. Each file contained in the DHT is stored in a small subset of these nodes. Each node breaks down periodically and it is necessary to have back-up mechanisms in order to avoid data loss. A trade-off is necessary between the bandwidth and the memory used for this back-up mechanism and the data loss rate. Back-up mechanisms already exist and have been studied thanks to simulation. To our knowledge, no theoretical study exists on this topic. With a very simple centralized model, we have been able to emphasise a trade-off between capacity and life-time with respect to the duplication rate. From a mathematical point of view, we are currently studying different time scales of the system with an averaging phenomenon.
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