13 research outputs found

    Electron Energy Regression in the CMS High-Granularity Calorimeter Prototype

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    We present a new publicly available dataset that contains simulated data of a novel calorimeter to be installed at the CERN Large Hadron Collider. This detector will have more than six-million channels with each channel capable of position, ionisation and precision time measurement. Reconstructing these events in an efficient way poses an immense challenge which is being addressed with the latest machine learning techniques. As part of this development a large prototype with 12,000 channels was built and a beam of high-energy electrons incident on it. Using machine learning methods we have reconstructed the energy of incident electrons from the energies of three-dimensional hits, which is known to some precision. By releasing this data publicly we hope to encourage experts in the application of machine learning to develop efficient and accurate image reconstruction of these electrons.Comment: 7 pages, 6 figure

    CODAS+UHDAS Documentation

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    This website contains instructions for CODAS (Common Ocean Data Access System) processing of ship-mounted ADCP (Acoustic Doppler Current Profiler) data, and for operating the UHDAS (University of Hawaii Data Acquisition System) system for acquiring those data

    CODAS+UHDAS Documentation

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    This upload had some extraneous information. See https://zenodo.org/record/8371260 This website contains instructions for CODAS (Common Ocean Data Access System) processing of ship-mounted ADCP (Acoustic Doppler Current Profiler) data, and for operating the UHDAS (University of Hawaii Data Acquisition System) system for acquiring those data

    Seminal Plasma Proteins and Sperm Resistance to Stress

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    Sublethal sperm freezing damage: Manifestations and solutions

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