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Neural Network based Electron Identification in the ZEUS Calorimeter

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arxiv hep-ex/9505004 v1 pith:AGGNQFRI submitted 1995-05-06 hep-ex

classification hep-ex
keywords electronapproachidentificationnetworkneuralalgorithmcalorimeterperformance
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We present an electron identification algorithm based on a neural network approach applied to the ZEUS uranium calorimeter. The study is motivated by the need to select deep inelastic, neutral current, electron proton interactions characterized by the presence of a scattered electron in the final state. The performance of the algorithm is compared to an electron identification method based on a classical probabilistic approach. By means of a principle component analysis the improvement in the performance is traced back to the number of variables used in the neural network approach.

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    An interview article recounts Halina Abramowicz's career in experimental particle physics, including her work on neutrino scattering, HERA diffraction, and the European Strategy Update.

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