匹配过滤引力波脉冲星信号涉及互反伽马函数

M. Normandin, A. Vajda, S. Valluri
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引用次数: 3

摘要

引力波的直接探测是一个具有挑战性的问题,涉及复杂的实验和数据分析技术。检测信号的验证需要一种有效的方法来区分源信号和背景噪声。一种可能性是使用不同的模板执行匹配的过滤分析。匹配滤波是模式识别的一种形式,它无处不在,有着无数不同的应用。在目前的工作中,我们开发了傅里叶变换,单色,多普勒移位,连续GW脉冲星信号的匹配滤波分析,其中包含了地球旋转和轨道运动的影响。GW脉冲星信号是两个欧拉函数的倒数的乘积,它们的参数中包含傅里叶变换的带宽频率。我们为模板与接收信号的内积导出了恒定谱噪声密度情况下的精确解析解,从而获得了拟合因子的封闭形式表达式,该因子是模板与接收信号匹配程度的度量。这个结果可以反过来用来确定GW源的位置。法国-意大利VIRGO GW探测器的谱噪声密度的简单情况及其高斯白噪声的特殊情况也适用于解析公式。我们的分析表明,拟合因子可能表现出简单的对称性,相对于源的极方向角。近似对称性在减少数值计算时间方面也很有用。我们目前的研究证实,整个分析非常适合并行计算。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Matched filtering a gravitational wave pulsar signal involving reciprocal gamma functions
The direct detection of Gravitational Waves (GW) is a challenging problem that involves elaborate experimental and data analysis techniques. The verification of a detected signal demands an effective way to distinguish the source signal from the background noise. One possibility is to perform matched filtering analysis using different templates. Matched filtering, a form of pattern recognition, is ubiquitous and finds innumerable and diverse applications. In the present work, we develop the matched filter analysis for a Fourier transformed, monochromatic, Doppler shifted, continuous GW pulsar signal, which incorporates the effects of the rotational and orbital motion of the Earth. The GW pulsar signal involves a product of the reciprocals of two Eulerian gamma functions containing the Fourier transformed bandwidth frequency in their arguments. We derive an exact analytic solution for the case of constant spectral noise density for the inner product of the template with a received signal, thereby obtaining a closed form expression for the fitting factor, a measure of how well the template matches the received signal. This result can in turn be used to determine the location of the GW source. Simpler cases of the spectral noise density for the French-Italian VIRGO GW detector and its special case for Gaussian white noise are also amenable to an analytic formulation. Our analysis shows that the fitting factor may exhibit simple symmetries with respect to the polar direction angle to the source. Approximate symmetries will also be useful in reducing the numerical computation times. Our current study confirms that the whole analysis lends itself well to parallel computation.
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