| [1] | F. Hummer. Validation of the SiPM-on-Tile readout chain for the CMS High Granularity Calorimeter. JINST, 21(04):C04024, 2026. [ bib | DOI ] |
| [2] | F. Hummer. HGCAL SiPM-on-tile full-stack integration with the Serenity Phase-2 DAQ hardware. JINST, 20(01):C01015, 2025. [ bib | DOI ] |
| [3] | Fabian Hummer, Lorenz Emberger, and Frank Simon. Timing performance of SiPM-on-Tile elements: laboratory and test beam measurements. JINST, 20(08):P08028, 2025. [ bib | DOI | arXiv ] |
| [4] | S. Lai et al. Shower separation in five dimensions for highly granular calorimeters using machine learning. JINST, 19(10):P10027, 2024. [ bib | DOI | arXiv ] |
| [5] | M. Aamir et al. Using graph neural networks to reconstruct charged pion showers in the CMS High Granularity Calorimeter. 6 2024. [ bib | arXiv ] |
| [6] | S. Lai et al. Software Compensation for Highly Granular Calorimeters using Machine Learning. JINST, 19:P04037, 2024. [ bib | DOI | arXiv ] |
| [7] | F. M. Maier et al. Increased beam energy as a pathway towards a highly selective and high-flux MR-ToF mass separator. Nucl. Instrum. Meth. A, 1056:168545, 2023. [ bib | DOI ] |
| [8] | A. White et al. Design, construction and commissioning of a technological prototype of a highly granular SiPM-on-tile scintillator-steel hadronic calorimeter. JINST, 18(11):P11018, 2023. [ bib | DOI | arXiv ] |
| [9] | V. Lagaki et al. Stray-light Suppression for the MIRACLS Proof-of-principle Experiment. Acta Phys. Polon. B, 51(3):571, 2020. [ bib | DOI ] |
This file was generated by bibtex2html 1.99.