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Sudarshan Paramesvaran

Researcher at University of Bristol

Publications -  1311
Citations -  85459

Sudarshan Paramesvaran is an academic researcher from University of Bristol. The author has contributed to research in topics: Large Hadron Collider & Lepton. The author has an hindex of 125, co-authored 1169 publications receiving 75865 citations. Previous affiliations of Sudarshan Paramesvaran include University of California, San Diego & University of California, Los Angeles.

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Search for a W′ boson decaying to a bottom quark and a top quark in pp collisions at √s = 7 TeV

S. Chatrchyan, +2174 more
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Measurements of jet charge with dijet events in pp collisions at √s = 8 TeV

Albert M. Sirunyan, +2301 more
TL;DR: In this article, the authors measured the transverse momentum pT of the leading jet and compared it with the leading and next-to-leading-order event generators combined with parton showers.
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Constraints on the double-parton scattering cross section from same-sign W boson pair production in proton-proton collisions at √s=8 TeV

Albert M. Sirunyan, +2293 more
TL;DR: In this paper, a search for same-sign WW production via double-parton scattering is performed based on proton-proton collision data at a center-of-mass energy of 8 TeV using dimuon and electron-muon final states.
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Search for new neutral Higgs bosons through the H→ZA→ℓ+ℓ−bb¯¯¯ process in pp collisions at √s = 13 TeV

Albert M. Sirunyan, +2398 more
TL;DR: In this article, a search for an extension to the scalar sector of the standard model is reported, where a new CP-even (odd) boson decays to a Z boson and a lighter CP-odd boson further decays into a b quark pair.
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Prospects for Beyond the Standard Model Physics Searches at the Deep Underground Neutrino Experiment

B. Abi, +968 more
TL;DR: The Deep Underground Neutrino Experiment (DUNE) is a powerful tool for a variety of physics topics, as it enables opportunities not only to perform precision neutrino measurements that may uncover deviations from the present three-flavor mixing paradigm, but also to discover new particles and unveil new interactions and symmetries beyond those predicted in the Standard Model (SM).