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Filter design for the detection of compact sources based on the Neyman-Pearson detector

机译:基于Neyman-Pearson检测器的紧凑型源检测滤波器设计

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摘要

This paper considers the problem of compact source detection on a Gaussian background in 1D. Two aspects of this problem are considered: the design of the detector and the filtering of the data. Our detection scheme is based on local maxima and it takes into account not only the amplitude but also the curvature of the maxima. A Neyman-Pearson test is used to define the region of acceptance, that is given by a sufficient linear detector that is independent on the amplitude distribution of the sources. We study how detection can be enhanced by means of linear filters with a scaling parameter and compare some of them (the Mexican Hat wavelet, the matched and the scale-adaptive filters). We introduce a new filter, that depends on two free parameters (biparametric scale-adaptive filter). The value of these two parameters can be determined, given the a priori pdf of the amplitudes of the sources, such that the filter optimizes the performance of the detector in the sense that it gives the maximum number of real detections once fixed the number density of spurious sources. The combination of a detection scheme that includes information on the curvature and a flexible filter that incorporates two free parameters (one of them a scaling) improves significantly the number of detections in some interesting cases. In particular, for the case of weak sources embedded in white noise the improvement with respect to the standard matched filter is of the order of 40%. Finally, an estimation of the amplitude of the source is introduced and it is proven that such an estimator is unbiased and it has maximum efficiency. We perform numerical simulations to test these theoretical ideas and conclude that the results of the simulations agree with the analytical ones.
机译:本文考虑了一维高斯背景下紧凑源检测的问题。考虑了此问题的两个方面:检测器的设计和数据的过滤。我们的检测方案基于局部最大值,不仅考虑了幅度,还考虑了最大值的曲率。 Neyman-Pearson测试用于定义接受区域,该区域由足够的线性检测器给出,该检测器与光源的振幅分布无关。我们研究了如何通过带有比例参数的线性滤波器来增强检测效果,并比较其中的一些参数(墨西哥帽小波,匹配的和比例自适应的滤波器)。我们引入了一个新的滤波器,该滤波器取决于两个自由参数(双参数比例自适应滤波器)。在给定信号源振幅的先验pdf的情况下,可以确定这两个参数的值,这样一来,滤波器就可以优化检测器的性能,从某种意义上说,一旦确定了检测器的密度,它就可以提供最大数量的实际检测。虚假来源。在一些有趣的情况下,包括曲率信息的检测方案和结合了两个自由参数(其中一个为缩放比例)的灵活滤波器的组合可以显着提高检测次数。特别地,对于嵌入白噪声中的弱光源,相对于标准匹配滤波器的改进约为40%。最终,引入了对源的幅度的估计,并且证明了这种估计器是无偏的并且具有最大的效率。我们进行数值模拟以检验这些理论思想,并得出结论,模拟结果与分析结果一致。

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