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Weak-lensing Mass Reconstruction of Galaxy Clusters with a Convolutional Neural Network

Authors
Sungwook HongSangnam ParkMyung Kook Jee차상준Dongsu Park
Issue Date
Dec-2021
Publisher
IOP PUBLISHING LTD
Keywords
기계학습; 우주론; 암흑물질; 중력렌즈; 은하단
Citation
ASTROPHYSICAL JOURNAL, v.923, no.2, pp 266-1 - 266-14
Journal Title
ASTROPHYSICAL JOURNAL
Volume
923
Number
2
Start Page
266-1
End Page
266-14
URI
https://yscholarhub.yonsei.ac.kr/handle/2021.sw.yonsei/22933
DOI
10.3847/1538-4357/ac3090
ISSN
0004-637X
Abstract
We introduce a novel method for reconstructing the projected matter distributions of galaxy clusters with weak-lensing (WL) data based on a convolutional neural network (CNN). Training data sets are generated with ray-tracing through cosmological simulations. We control the noise level of the galaxy shear catalog such that it mimics the typical properties of the existing ground-based WL observations of galaxy clusters. We find that the mass reconstruction by our multilayered CNN with the architecture of alternating convolution and trans-convolution filters significantly outperforms the traditional reconstruction methods. The CNN method provides better pixel-to-pixel correlations with the truth, restores more accurate positions of the mass peaks, and more efficiently suppresses artifacts near the field edges. In addition, the CNN mass reconstruction lifts the mass-sheet degeneracy when applied to our projected cluster mass estimation from sufficiently large fields. This implies that this CNN algorithm can be used to measure the cluster masses in a model-independent way for future wide-field WL surveys.
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