Recognition of electron peaks and primary ionization clusters in real data-driven waveform signals is the main goal of research for the usage of the cluster counting technique in particle identification at future colliders. The state-of-the-art open-source algorithms fail to find the cluster distribution Poisson behavior even in low-noise conditions. In this work, we present cutting-edge algorithms and their performance to search for electron peaks and identify ionization clusters in experimental data using the latest available computing tools and physics knowledge.

D'Anzi, B., Chiarello, G., Corvaglia, A., De Filippis, N., Elmetenawee, W., De Santis, F., et al. (2026). Cluster counting algorithms for particle identification at future colliders. JOURNAL OF PHYSICS. CONFERENCE SERIES, 3206(1) [10.1088/1742-6596/3206/1/012074].

Cluster counting algorithms for particle identification at future colliders

Chiarello, Gianluigi;
2026-01-01

Abstract

Recognition of electron peaks and primary ionization clusters in real data-driven waveform signals is the main goal of research for the usage of the cluster counting technique in particle identification at future colliders. The state-of-the-art open-source algorithms fail to find the cluster distribution Poisson behavior even in low-noise conditions. In this work, we present cutting-edge algorithms and their performance to search for electron peaks and identify ionization clusters in experimental data using the latest available computing tools and physics knowledge.
2026
21st International Workshop on Advanced Computing and Analysis Techniques in Physics Research (ACAT 2022)
09/2025
D'Anzi, B., Chiarello, G., Corvaglia, A., De Filippis, N., Elmetenawee, W., De Santis, F., et al. (2026). Cluster counting algorithms for particle identification at future colliders. JOURNAL OF PHYSICS. CONFERENCE SERIES, 3206(1) [10.1088/1742-6596/3206/1/012074].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10447/710844
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