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Resource Management for Networked Classifiers in Distributed Stream Mining Systems

机译:分布式流挖掘系统中联网分类器的资源管理

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Networks of classifiers are capturing the attention of system and algorithmic researchers because they offer improved accuracy oyer single model classifiers, can be distributed over a network of servers for improved scalability, and can be adapted to available system resources. This work provides a principled approach for the optimized allocation of system resources across a networked chain of classifiers. We begin with an illustrative example of how complex classification tasks can be decomposed into a network of binary classifiers. We formally define a global performance metric by recursively collapsing the chain of classifiers into one combined classifier. The performance metric trades off the end-to-end probabilities of detection and false alarm, both of which depend on the resources allocated to each individual classifier. We formulate the optimization problem and present optimal resource allocation results for both simulated and state-of-the-art classifier chains operating on telephony data.
机译:分类器网络正在捕捉系统和算法研究人员的注意,因为它们提供了改进的精度Oyer单一模型分类器,可以分布在服务器网络上,以提高可扩展性,并且可以适应可用的系统资源。这项工作提供了一个原则方法,可以通过网络链中的网络链进行优化分配的方法。我们从分类任务如何分解成二进制分类器网络的说明性示例开始。我们通过递归地将分类器折叠成一个组合的分类器来正式定义全局性能度量。性能度量标准从检测和误报的端到端概率上交易,两者都依赖于分配给每个单独分类器的资源。我们制定了优化问题,并为在电话数据上运行的模拟和最先进的分类器链提供最佳资源分配结果。

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