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Improving the machine learning based vertex reconstruction for large liquid scintillator detectors with multiple types of PMTs

Authors :
Li, Zi-Yuan
Qian, Zhen
He, Jie-Han
He, Wei
Wu, Cheng-Xin
Cai, Xun-Ye
You, Zheng-Yun
Zhang, Yu-Mei
Luo, Wu-Ming
Publication Year :
2022

Abstract

Precise vertex reconstruction is essential for large liquid scintillator detectors. A novel method based on machine learning has been successfully developed to reconstruct the event vertex in JUNO previously. In this paper, the performance of machine learning based vertex reconstruction is further improved by optimizing the input images of the neural networks. By separating the information of different types of PMTs as well as adding the information of the second hit of PMTs, the vertex resolution is improved by about 9.4 % at 1 MeV and 9.8 % at 11 MeV, respectively.

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2205.04039
Document Type :
Working Paper