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Binary neutron stars gravitational wave detection based on wavelet packet analysis and convolutional neural networks 被引量:2

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摘要 This work investigates the detection of binary neutron stars gravitational wave based on convolutional neural network(CNN).To promote the detection performance and efficiency,we proposed a scheme based on wavelet packet(WP)decomposition and CNN.The WP decomposition is a time-frequency method and can enhance the discriminant features between gravitational wave signal and noise before detection.The CNN conducts the gravitational wave detection by learning a function mapping relation from the data under being processed to the space of detection results.This function-mapping-relation style detection scheme can detection efficiency significantly.In this work,instrument effects are con-sidered,and the noise are computed from a power spectral density(PSD)equivalent to the Advanced LIGO design sensitivity.The quantitative evaluations and comparisons with the state-of-art method matched filtering show the excellent performances for BNS gravitational wave detection.On efficiency,the current experiments show that this WP-CNN-based scheme is more than 960 times faster than the matched filtering.
出处 《Frontiers of physics》 SCIE CSCD 2020年第2期111-117,共7页 物理学前沿(英文版)
基金 the National Nat-ural Science Foundation of China(Grant Nos.11973022,61273248,and 61075033) the Natural Science Foundation of Guangdong Province(Grant Nos.2014A030313425 and S2011010003348) China Scholarship Council(Grant No.201706755006) the Joint Re-search Fund in Astronomy(Grant No.U1531242)under coopera-tive agreement between the National Natural Science Foundation of China(NSFC)and Chinese Academy of Sciences(CAS) the Major projects of the joint fund of Guangdong and the National Natural Science Foundation(Grant No.U1811464)to our free ex-plorations.
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