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Resource allocation under uncertainty using the maximum entropy principle

机译:使用最大熵原理的不确定性下的资源分配

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In this paper, we formulate and solve a problem of resource allocation over a given time horizon with uncertain demands and uncertain capacities of the available resources. In particular, we consider a number of data sources with uncertain bit rates, sharing a set of parallel channels with time-varying and possibly uncertain transmission capacities. We present a method for allocating the channels so as to maximize the expected system throughput. The framework encompasses quality-of-service (QoS) requirements, e.g., minimum-rate constraints, as well as priorities represented by a user-specific cost per transmitted bit. We assume only limited statistical knowledge of the source rates and channel capacities. Optimal solutions are found by using the maximum entropy principle and elementary probability theory. The suggested framework explains how to make use of multiuser diversity in various settings, a field of recently growing interest in communication theory. It admits scheduling over multiple base stations and includes transmission buffers to obtain a method for optimal resource allocation in rather general multiuser communication systems.
机译:在本文中,我们提出并解决了在给定的时间范围内具有不确定需求和不确定可用资源容量的资源分配问题。特别是,我们考虑了许多比特率不确定的数据源,它们共享一组随时间变化且传输能力可能不确定的并行信道。我们提出一种分配信道的方法,以使预期的系统吞吐量最大化。该框架包含服务质量(QoS)要求,例如最低速率限制,以及由每个传输位的用户特定成本表示的优先级。我们仅假设对源速率和信道容量的统计知识有限。通过使用最大熵原理和基本概率理论找到最优解。建议的框架说明了如何在各种环境下利用多用户多样性,这是近来对通信理论越来越感兴趣的领域。它允许在多个基站上进行调度,并包括传输缓冲区,以在相当普通的多用户通信系统中获得用于优化资源分配的方法。

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