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arxiv: 1110.0955 · v1 · pith:XAJT4RIUnew · submitted 2011-10-05 · 🌌 astro-ph.IM

Track reconstruction with MIMAC

classification 🌌 astro-ph.IM
keywords mimactrackdetectiondetectorreconstructiondarkdirectionallikelihood
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Directional detection of Dark Matter is a promising search strategy. However, to perform such kind of detection, the recoiling tracks have to be accurately reconstructed: direction, sense and position in the detector volume. In order to optimize the track reconstruction and to fully exploit the data from the MIMAC detector, we developed a likelihood method dedicated to the track reconstruction. This likelihood approach requires a full simulation of track measurements with MIMAC in order to compare real tracks to simulated ones. Finally, we found that the MIMAC detector should have the required performance to perform a competitive directional detection of Dark Matter.

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