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      Laplace Functional Ordering of Point Processes in Large-scale Wireless Networks

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          Abstract

          Stochastic orders on point processes are partial orders which capture notions like being larger or more variable. Laplace functional ordering of point processes is a useful stochastic order for comparing spatial deployments of wireless networks. It is shown that the ordering of point processes is preserved under independent operations such as marking, thinning, clustering, superposition, and random translation. Laplace functional ordering can be used to establish comparisons of several performance metrics such as coverage probability, achievable rate, and resource allocation even when closed form expressions of such metrics are unavailable. Applications in several network scenarios are also provided where tradeoffs between coverage and interference as well as fairness and peakyness are studied. Monte-Carlo simulations are used to supplement our analytical results.

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          Author and article information

          Journal
          20 August 2014
          Article
          1408.4528
          3e42dd88-59d6-4015-aaaf-86cd095899fb

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

          History
          Custom metadata
          30 pages, 5 figures, Submitted to IEEE Transactions on Wireless Communications
          cs.IT cs.NI math.IT

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