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Signal classification and event reconstruction for acoustic neutrino detection in sea water with KM3NeT

机译:KM3NeT用于海水中音中微子检测的信号分类和事件重建

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The research infrastructure KM3NeT will comprise a multi cubic kilometer neutrino telescope that is currently being constructed in the Mediterranean Sea. Modules with optical and acoustic sensors are used in the detector. While the main purpose of the acoustic sensors is the position calibration of the detection units, they can be used as instruments for studies on acoustic neutrino detection, too. In this article, methods for signal classification and event reconstruction for acoustic neutrino detectors will be presented, which were developed using Monte Carlo simulations. For the signal classification the disk–like emission pattern of the acoustic neutrino signal is used. This approach improves the suppression of transient background by several orders of magnitude. Additionally, an event reconstruction is developed based on the signal classification. An overview of these algorithms will be presented and the efficiency of the classification will be discussed. The quality of the event reconstruction will also be presented.
机译:研究基础设施KM3NeT将包括一个多立方公里的中微子望远镜,该望远镜目前正在地中海建造。检测器中使用带有光学和声学传感器的模块。虽然声传感器的主要目的是检测单元的位置校准,但它们也可以用作研究声学中微子检测的仪器。在本文中,将介绍声中微子探测器的信号分类和事件重建方法,这些方法是使用蒙特卡洛模拟方法开发的。对于信号分类,使用了中微子信号的圆盘状发射模式。这种方法将对瞬态背景的抑制提高了几个数量级。另外,基于信号分类开发了事件重建。将概述这些算法,并讨论分类的效率。还将介绍事件重建的质量。

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