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Using an information-theoretic sensor placement algorithm to assess classifier robustness

机译:使用信息理论传感器放置算法评估分类器的鲁棒性

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In this paper, we use an information theoretical sensor placement algorithm to assess the impact of target camouflage, concealment, and deception (CCD) effects on classifier performance. Physics-based target models are constructed to exhibit varying CCD effects of a single target class. An information theoretical sensor placement algorithm is used to identify potential sensor locations yielding highly probable discrimination of test targets representing non-CCD and CCD targets. Platforms are positioned according to the identified sensor locations for classification processing. Classification performance results are presented and discussed in the context of the modeled CCD effect. Results demonstrate the effectiveness of the placement algorithm to identify sensor locations void of the intended CCD effects.
机译:在本文中,我们使用信息理论的传感器放置算法来评估目标伪装,隐蔽和欺骗(CCD)对分类器性能的影响。构建基于物理的目标模型,以展示单个目标类别的各种CCD效果。信息理论的传感器放置算法用于识别潜在的传感器位置,从而对代表非CCD和CCD目标的测试目标产生极高的辨别力。根据识别出的传感器位置对平台进行定位,以进行分类处理。在模拟的CCD效果的背景下展示和讨论了分类性能结果。结果证明了放置算法可以有效地识别没有预期CCD效应的传感器位置。

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