目标类别识别的自适应波形

Junhyeong Bae, N. Goodman
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引用次数: 17

摘要

本文比较了两种匹配照明波形设计技术在区分M个目标假设方面的性能。波形是在闭环序列测试框架内实现的。与我们之前的工作不同,本文的目标假设是用功率谱密度进行统计表征的。因此,波形与目标类匹配,而不是与单个目标实现匹配。随着类概率随接收数据的变化而变化,波形被适应,从而导致更快的决策。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Adaptive waveforms for target class discrimination
This paper compares the performance of two matched-illumination waveform design techniques for distinguishing between M target hypotheses. The waveforms are implemented within a closed-loop, sequential-testing framework. In contrast to our earlier work, in this paper the target hypotheses are statistically characterized by power spectral densities. Thus, the waveforms are matched to the target class rather than to individual target realizations. As the class probabilities change in response to received data, the waveforms are adapted, which leads to faster decisions.
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