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Machine Learning Application for $\mathbf{\Lambda}$ Hyperon Reconstruction in CBM at FAIR

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arxiv 2109.02435 v1 pith:VTAAOIOK submitted 2021-08-30 physics.ins-det nucl-ex

classification physics.ins-detnucl-ex
keywords lambdareconstructiondecayfairhighhyperonlearningmachine
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

The Compressed Baryonic Matter experiment at FAIR will investigate the QCD phase diagram in the region of high net-baryon densities. Enhanced production of strange baryons, such as the most abundantly produced $\Lambda$ hyperons, can signal transition to a new phase of the QCD matter. In this work, the CBM performance for reconstruction of the $\Lambda$ hyperon via its decay to proton and $\pi^{-}$ is presented. Decay topology reconstruction is implemented in the Particle-Finder Simple (PFSimple) package with Machine Learning algorithms providing efficient selection of the decays and high signal to background ratio.

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Cited by 1 Pith paper

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  1. Detectors and Electronics for the CBM experiment at FAIR

    physics.ins-det 2025-06 conditional novelty 2.0 of 10

    The CBM detector and electronics systems are reported as mature, with series production underway and key performance-validated through beam tests at mCBM and deployments in STAR, HADES, and E16.

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