Recursive jigsaw reconstruction: HEP event analysis in the presence of kinematic and combinatoric ambiguities

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Issue Date
2017-12-20Author
Jackson, Paul
Rogan, Christopher
Publisher
American Physical Society
Type
Article
Article Version
Scholarly/refereed, publisher version
Rights
© 2017 American Physical Society.
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Show full item recordAbstract
We introduce recursive jigsaw reconstruction, a technique for analyzing reconstructed particle interactions in the presence of kinematic and combinatoric unknowns associated with unmeasured and indistinguishable particles, respectively. By factorizing missing information according to decays and rest frames of intermediate particles, an interchangeable and configurable set of jigsaw rules, algorithms for resolving these unknowns, are applied to approximately reconstruct decays with arbitrarily many particles, in their entirety. That the recursive jigsaw reconstruction approach can be used to analyze any event topology of interest, with any number of ambiguities, is demonstrated through twelve different simulated LHC physics examples. These include the production and decay of W, Z, Higgs bosons, and supersymmetric particles including gluinos, stop quarks, charginos, and neutralinos.
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Citation
Jackson, P., & Rogan, C. (2017). Recursive Jigsaw Reconstruction: HEP event analysis in the presence of kinematic and combinatoric ambiguities. Physical Review D, 96(11), 112007.
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