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Bog, paperback QCD Radiation in Top-Antitop and Z+Jets Final States af Kiran Joshi

QCD Radiation in Top-Antitop and Z+Jets Final States (Springer Theses)

- Precision Measurements at Atlas

(Bog, paperback)

34 black & white illustrations, 63 colour illustrations, biography

34 black & white illustrations, 63 colour illustrations, biography

Produktdetaljer:

Sprog:
Engelsk
ISBN-13:
9783319387130
Sideantal:
194
Udgivet:
04-11-2016
Udgave:
Softcover reprint of the original 1st ed. 2015
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Forlagets beskrivelse
34 black & white illustrations, 63 colour illustrations, biography
Bibliotekernes beskrivelse
This thesis contains new research in both experimental and theoretical particle physics, making important contributions in each. Two analyses of collision data from the ATLAS experiment at the LHC are presented, as well as two phenomenological studies of heavy coloured resonances that could be produced at the LHC. The first data analysis was the measurement of top quark-antiquark production with a veto on additional jet activity. As the first detector-corrected measurement of jet activity in top-antitop events it played an important role in constraining the theoretical modelling, and ultimately reduced these uncertainties for ATLAS's other top-quark measurements by a factor of two. The second data analysis was the measurement of Z+2jet production and the observation of the electroweak vector boson fusion (VBF) component. As the first observation of VBF at a hadron collider, this measurement demonstrated new techniques to reliably extract VBF processes and paved the way for future VBF Higgs measurements. The first phenomenological study developed a new technique for identifying the colour of heavy resonances produced in proton-proton collisions.As a by-product of this study an unexpected and previously unnoticed correlation was discovered between the probability of correctly identifying a high-energy top and the colour structure of the event it was produced in. The second phenomenological study explored this relationship in more detail, and could have important consequences for the identification of new particles that decay to top quarks.

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