论文标题

使用人工神经网络测量$ w^+w^ - \ to w^+w^ - $ w^ - $ process中的异常四分音量规耦合

Measuring the anomalous quartic gauge couplings in the $W^+W^-\to W^+W^-$ process at muon collider using artificial neural networks

论文作者

Yang, Ji-Chong, Han, Xue-Ying, Qin, Zhi-Bin, Li, Tong, Guo, Yu-Chen

论文摘要

MUON对撞机提供了一个独特的机会,可以研究向量玻色子散射过程和尺寸-8操作员有助于异常的四分音量规耦合〜(AQGCS)。由于最终状态更清洁,在MUON对撞机上解码子过程和某些操作员联轴器更容易。我们试图在本文中识别独家$ ww \ ww $ scatting的异常$ wwww $耦合。由于一个AQGC可以由多个Dimension-8运算符诱导,因此对一个耦合的研究可以帮助局限不同的操作员。同时,将$ ww \挑选到WW $流程可以帮助研究Unitarity界限。对应于异常$ wwww $耦合的矢量玻色子散射过程为$μ^+μ^ - \ toννν\barν\barν\barν\barν\ ell^+el^+ell^ - $,在最终状态下具有四个(抗)中微子,这在现象学研究中带来了麻烦。在本文中,机器学习方法用于解决此问题。我们发现,使用人工神经网络可以将$ w^+w^ - \提取到w^+w^ - $贡献,并且有助于重建子进程的质量能量中心,这在对标准模型有效现场理论的研究中很重要。提出了$ \ sqrt {s} = 30 $ tev的MUON对撞机的尺寸-8操作员的敏感性和预期约束。我们证明,人工神经网络在最终状态中有多个中微子的过程的现象学研究中表现出巨大的潜力。

The muon collider provides a unique opportunity to study the vector boson scattering processes and dimension-8 operators contributing to anomalous quartic gauge couplings~(aQGCs). Because of the cleaner final state, it is easier to decode subprocess and certain operator couplings at a muon collider. We attempt to identify the anomalous $WWWW$ coupling in the exclusive $WW\to WW$ scattering in this paper. Since one aQGC can be induced by multiple dimension-8 operators, the study of one coupling can help to confine different operators. Meanwhile, singling out the $WW\to WW$ process can help to study the unitarity bounds. The vector boson scattering process corresponding to the anomalous $WWWW$ coupling is $μ^+μ^-\to νν\barν\barν\ell^+\ell^-$, with four (anti-)neutrinos in the final state, which brings troubles in phenomenological studies. In this paper, the machine learning method is used to tackle this problem. We find that, using the artificial neural network can extract the $W^+W^-\to W^+W^-$ contribution, and is helpful to reconstruct the center of mass energy of the subprocess which is important in the study of the Standard Model effective field theory. The sensitivities and the expected constraints on the dimension-8 operators at the muon collider with $\sqrt{s}=30$ TeV are presented. We demonstrate that the artificial neural networks exhibit great potential in the phenomenological study of processes with multiple neutrinos in the final state.

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