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首页> 外文期刊>IEEE Transactions on Signal Processing >Nonparametric Detection of Geometric Structures Over Networks
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Nonparametric Detection of Geometric Structures Over Networks

机译:网络上几何结构的非参数检测

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摘要

Nonparametric detection of the possible existence of an anomalous structure over a network is investigated. Nodes corresponding to the anomalous structure (if one exists) receive samples generated by a distribution , which is different from a distribution generating samples for other nodes. If an anomalous structure does not exist, all nodes receive samples generated by . It is assumed that the distributions and are arbitrary and unknown. The goal is to design statistically consistent tests with probability of errors converging to zero as the network size becomes asymptotically large. Kernel-based tests are proposed based on maximum mean discrepancy, which measures the distance between mean embeddings of distributions into a reproducing kernel Hilbert space. Detection of an anomalous interval over a line network is first studied. Sufficient conditions on minimum and maximum sizes of candidate anomalous intervals are characterized in order to guarantee that the proposed test is consistent. It is also shown that certain necessary conditions must hold in order to guarantee that any test is universally consistent. Comparison of sufficient and necessary conditions yields that the proposed test is order-level optimal and nearly optimal respectively in terms of minimum and maximum sizes of candidate anomalous intervals. Generalization of the results to other networks is further developed. Numerical results are provided to demonstrate the performance of the proposed tests.
机译:研究了在网络上是否存在异常结构的非参数检测。对应于异常结构(如果存在)的节点接收由分布生成的样本,该分布与为其他节点生成样本的分布不同。如果不存在异常结构,则所有节点都将接收由生成的样本。假定和是任意的并且是未知的。目的是设计统计上一致的测试,当网络规模渐近变大时,错误概率收敛到零。提出了基于核的测试,该测试基于最大均值差异,该均值度量了分布到再现内核Hilbert空间中的均值嵌入之间的距离。首先研究了线路网络上异常间隔的检测。对候选异常间隔的最小和最大大小的充分条件进行了表征,以确保建议的测试是一致的。还表明必须满足某些必要条件,以确保任何测试都普遍一致。充分条件和必要条件的比较得出,在候选异常间隔的最小和最大大小方面,所提出的测试分别是阶次最优和近乎最优的。将结果推广到其他网络。提供数值结果以证明所提出的测试的性能。

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