Electroweak Physics at the LHC Introductory Lecture

Similar documents
Physics at Hadron Colliders

Higgs Searches and Properties Measurement with ATLAS. Haijun Yang (on behalf of the ATLAS) Shanghai Jiao Tong University

Higgs Boson Production at the LHC

7 Physics at Hadron Colliders

Upgrade of ATLAS and CMS for High Luminosity LHC: Detector performance and Physics potential

2 ATLAS operations and data taking

The Higgs boson. Marina Cobal University of Udine

Basics of Higgs Physics

8.882 LHC Physics. Higgs Physics and Other Essentials. [Lecture 22, April 29, 2009] Experimental Methods and Measurements

Physics at Hadron Colliders Part II

ATLAS Discovery Potential of the Standard Model Higgs Boson

Top Physics at CMS. Intae Yu. Sungkyunkwan University (SKKU), Korea Yonsei University, Sep 12 th, 2013

Last Friday: pp(bar) Physics Intro, the TeVatron

Higgs Signals and Implications for MSSM

Higgs Searches at CMS

IX. Electroweak unification

The Collider Detector at Fermilab. Amitabh Lath Rutgers University July 25, 2002

Higgs couplings and mass measurements with ATLAS. Krisztian Peters CERN On behalf of the ATLAS Collaboration

arxiv:hep-ph/ v1 17 Apr 2000

arxiv: v1 [hep-ex] 5 Sep 2014

Elementary Particle Physics

Studies of top pair production in the fully hadronic channel at LHC with CMS

Channels and Challenges: Higgs Search at the LHC

Higgs Production at LHC

Finding the Higgs boson

Light Higgs Discovery Potential with ATLAS, Measurements of Couplings and

VBF SM Higgs boson searches with ATLAS

Beyond the Standard Model

TESTING THE STANDARD MODEL IN THE FORWARD REGION AT THE LHC

Discovery Physics at the Large Hadron Collider

The achievements of the CERN proton antiproton collider

Physics at the LHC: from Standard Model to new discoveries

Physique des Particules Avancées 2

LHC State of the Art and News

Photon Coupling with Matter, u R

Discovery potential of the SM Higgs with ATLAS

First physics with the ATLAS and CMS experiments. Niels van Eldik on behalf of the ATLAS and CMS collaborations

Confronting Theory with Experiment at the LHC

The W-mass Measurement at CDF

Lecture 03. The Standard Model of Particle Physics. Part II The Higgs Boson Properties of the SM

8.882 LHC Physics. High Energy Physics Overview. [Lecture 16, April 6, 2009] Experimental Methods and Measurements

Z boson studies at the ATLAS experiment at CERN. Giacomo Artoni Ph.D Thesis Project June 6, 2011

The HL-LHC physics program

Electroweak Physics and Searches for New Physics at HERA

Measurement of the Higgs Couplings by Means of an Exclusive Analysis of its Diphoton decay

Identification of the Higgs boson produced in association with top quark pairs in proton-proton

QCD at CDF. Régis Lefèvre IFAE Barcelona On behalf of the CDF Collaboration

Day2: Physics at TESLA

The Standard Model and Beyond

Risultati dell esperimento ATLAS dopo il run 1 di LHC. C. Gemme (INFN Genova), F. Parodi (INFN/University Genova) Genova, 28 Maggio 2013

Physics Highlights from 12 Years at LEP

Tevatron Physics Prospects. Paul Grannis, for the CDF and DØ collaborations ICFA Seminar, Oct

Particle physics today. Giulia Zanderighi (CERN & University of Oxford)

Top Physics in Hadron Collisions

The Strong Interaction and LHC phenomenology

Higgs Searches and Properties Measurement with ATLAS 杨海军 ( 上海交通大学 )

LHC Detectors and their Physics Potential. Nick Ellis PH Department, CERN, Geneva

Dark matter searches and prospects at the ATLAS experiment

Physics at Tevatron. Koji Sato KEK Theory Meeting 2005 Particle Physics Phenomenology March 3, Contents

Early physics with Atlas at LHC

DESY, 12. September Precision Electroweak Measurements. Stefan Roth RWTH Aachen

Standard Model Measurements at ATLAS

The God particle at last? Astronomy Ireland, Oct 8 th, 2012

STANDARD MODEL AND HIGGS BOSON

Search for a Standard Model Higgs boson in the H ZZ ( ) * decay channel with the ATLAS Experiment at CERN

The God particle at last? Science Week, Nov 15 th, 2012

Higgs Property Measurement with ATLAS

Higgs Search with the CMS detector at LHC. Satyaki Bhattacharya

Elementary Particles II

Standard Model of Particle Physics SS 2012

Electroweak results. Luca Lista. INFN - Napoli. LHC Physics

Experimental verification of the Salaam-Weinberg model. Pásztor Attila, Eötvös University Experimental Particle Physics Student Seminar

Recent Results on New Phenomena and Higgs Searches at DZERO

The latest status of LHC and the EWSB physics

Abdelhak DJOUADI ( LPT Orsay)

High Energy Physics. Lecture 9. Deep Inelastic Scattering Scaling Violation. HEP Lecture 9 1

Higgs Prospects at the Upgraded Tevatron: Fermilab Study Results

Lecture 3 Cross Section Measurements. Ingredients to a Cross Section

Search for the Higgs Boson at the LHC. Karl Jakobs Physikalisches Institut Universität Freiburg

Higgs cross-sections

Results on top physics by CMS

Discovery of the Higgs Boson

Electroweak Physics at the Tevatron

Measurement of jet production in association with a Z boson at the LHC & Jet energy correction & calibration at HLT in CMS

Higgs Boson in Lepton Decay Modes at the CMS Experiment

The LHC Heavy Flavour Programme

Dario Barberis. Physics with 2 nd Generation Pixel Detectors. Pixel 2002, Carmel (Ca), Sept Dario Barberis Genova University/INFN 1

LHC detectors: commissioning and early physics

Search for the Higgs boson in fermionic channels using the CMS detector

Introduction and Theoretical Background

Measurements of the W Boson Mass and Trilinear Gauge Boson Couplings at the Tevatron

Physics at the TeV Scale Discovery Prospects Using the ATLAS Detector at the LHC

Top and Electroweak Physics at. the Tevatron

UNIVERSITÀ DEGLI STUDI DI MILANO - BICOCCA DIPARTIMENTO DI FISICA G. OCCHIALINI CORSO DI DOTTORATO IN FISICA E ASTRONOMIA CICLO XXVII

Testing QCD at the LHC and the Implications of HERA DIS 2004

La ricerca dell Higgs Standard Model a CDF

Mojtaba Mohammadi Najafabadi School of Particles and Accelerators, IPM Aban 22- IPM Workshop on Electroweak and Higgs at the LHC

The ATLAS detector at the Large Hadron Collider: to boldly look where no one has looked before

Physics at LHC. lecture seven. Sven-Olaf Moch. DESY, Zeuthen. in collaboration with Martin zur Nedden

Searches for exotica at LHCb

Transcription:

Electroweak Physics at the LHC Introductory Lecture Stefan Dittmaier MPI München Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 1

1 The Large Hadron Collider (LHC) the world largest particle accelerator Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 2

Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 3

Some facts about the LHC: Planned startup: May 2008 (CERN Council, June 07) After accumulated delay in LHC installation, the originally planned low-energy run is dropped. Accelerator: Magnets: Beams: Bunches: Luminosity: circumference = 27 km 2 beam pipes in 2 in 1 magnet design 1232 superconducting dipole magnets (length 14 m, operating at B = 8 T, T = 1.9 K) two proton beams with energy E beam = 7 TeV = 7000 GeV, energy per beam up to 360 MJ for comparison: 1 TeV 1000 m p energy of motion of a flying mosquito 360 MJ energy of motion of an aircraft carrier at 12 knots 2808 bunches per beam, 10 11 protons per bunch, beam size of 16 µm at IP L 100 fb 1 / exp. / year Trigger: 10 9 collisions/s 10 2 interesting collisions/s online offline reconstruction millions of Gbytes / exp. / year Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 4

LHC accelerator, beam delivery, and experiments Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 5

LHC equipment in real life Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 6

Experiments at the LHC: ATLAS A Toroidal LHC ApparatuS CMS Compact Muon Solenoid LHCb LHC-beauty ALICE A Large Ion Collider Experiment TOTEM Total Cross Section, Elastic Scattering and Diffraction Dissociation LHCf LHC-forward ATLAS & CMS ( 1800 scientists from 150 institutes each) general-purpose experiment for recording proton-proton collisions searches for Higgs bosons and alternative schemes for the spontaneous symmetry-breaking mechanism searches for new particles (supersymmetric particles, new gauge bosons, leptoquarks, etc.) study possible quark and lepton compositeness physics of the top quark study physics of B mesons (CP violation, rare decays, spectroscopy, mixing) Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 7

The ATLAS detector Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 8

ATLAS in real life Wheel of the muon system Mounting of the endcap Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 9

The CMS detector Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 10

CMS in real life Hadronic calorimeter endcap Tracking system Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 11

Particle detection at CMS Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 12

How Higgs production might look at the LHC... H ZZ µ + µ µ + µ at CMS (=a clean event) Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 13

2 Our present understanding of elementary particle physics Gauge bosons (spin 1) for elmg. interaction strong interaction weak interaction Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 14

Structure of the Electroweak Standard Model Comparison of the Standard Model (SM) and QED: QED SM matter fields (spin 1 2 ) e± leptons + quarks gauge symmetry U(1) em SU(2) U(1) gauge bosons (spin 1) γ γ, Z 0, W ± Differences to QED: non-abelian gauge group gauge-boson self-interactions spontaneous symmetry breaking massive gauge bosons Z 0, W ± Higgs boson H (spin 0) SU(2) U(1) U(1) em Common description of electromagnetic and weak interactions Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 15

Structure of the Electroweak Standard Model and QCD Comparison of the Standard Model (SM) and QED: QED SM matter fields (spin 1 2 ) e± leptons + quarks gauge symmetry U(1) em SU(3) SU(2) U(1) gauge bosons (spin 1) γ γ, Z 0, W ±, g Differences to QED: non-abelian gauge group gauge-boson self-interactions spontaneous symmetry breaking massive gauge bosons Z 0, W ± Higgs boson H (spin 0) SU(2) U(1) U(1) em Common description of electromagnetic and weak interactions as well as strong interactions Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 15

Higgs mechanism and electroweak symmetry breaking SM: all particles receive their mass via interaction with the vacuum expectation value of the Higgs field a quantum-field theoretical ether theory but: medium Higgs field has its own particle excitation = Higgs boson Important ingredient: spontaneous symmetry breaking non-vanishing vacuum expectation value of a scalar field SM: ad hoc introduced Higgs potential drives symmetry breaking Investigation of Higgs self-interaction window to mechanism of symmetry breaking Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 16

CERN s down-to-earth explanation: The Higgs field is like a room full of physicists chattering quietly: Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 17

CERN s down-to-earth explanation: The Higgs field is like a room full of physicists chattering quietly: A particle is a well-known scientist walking in, attracting a cluster of admirers, thereby receiving resistance to movement ( mass ). Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 17

CERN s down-to-earth explanation: The Higgs field is like a room full of physicists chattering quietly: A particle is a well-known scientist walking in, attracting a cluster of admirers, thereby receiving resistance to movement ( mass ). The Higgs boson is like a rumor crossing the room, creating the same kind of clustering, but this time among the scientists themselves. Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 17

Theoretical and experimental facts about the Higgs field / boson: Higgs boson not yet found, e + e / ZH at LEP2 M H > 114.4 GeV (95% C.L.) LEPHIGGS 02 SM fit to precision measurements (µ decay, LEP1, LEP2, SLC, Tevatron) M H enters perturbative predictions M H < 144 GeV (95% C.L.) LEPEWWG Winter 07 theoretical bound from triviality and unitarity arguments: M H < 1 TeV Higgs field rescues renormalizability and unitarity of the gauge theory with massive gauge bosons SM is closed theory down to arbitrarily small scales ( UV closure ) (though this requires some fine-tuning in the renormalization of the Higgs sector) Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 18

Theoretical description of particle interactions and processes Starting point: quantum field theory defines model each particle corresponds to a field φ i Lagrangian L(φ i ) for free motion & interactions Perturbative evaluation of quantum field theories Transition amplitude f S i = Σ Feynman graphs for i f Form graphs following Feynman rules: free propagators: vertices = elementary interactions: γ, Z, W f g H etc. propagators & vertices terms in L(φ i ) Perturbative series for g 0 9 = power series in g n >= = power series in m >; = expansion in # loops in diagrams loop diagrams = quantum corrections etc. Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 19

Elementary couplings of electroweak interaction: gauge-boson self-interaction: Higgs self-interaction: gauge-boson Higgs interation: fermionic interaction: Elementary couplings of the strong interaction: gluon self-interation: quark gluon interaction: Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 20

The Standard Model and ideas beyond fermions bosons SU(3) SU(2) U(1) gauge interactions Gauge bosons: γ, Z, W ±, g Matter: (chiral) quarks+leptons Yukawa interactions CKM mixing, small CP Higgs sector: EW symmetry breaking driven by self-interactions = not yet directly tested SM sector Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 21

The Standard Model and ideas beyond fermions bosons SU(3) SU(2) U(1) gauge interactions Gauge bosons: γ, Z, W ±, g Matter: (chiral) quarks+leptons non-standard ν s (Majorana?) heavy generations? Yukawa interactions CKM mixing, small CP Higgs sector: EW symmetry breaking driven by self-interactions Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 21

The Standard Model and ideas beyond fermions bosons SU(3) SU(2) U(1) gauge interactions Gauge bosons: γ, Z, W ±, g Matter: (chiral) quarks+leptons non-standard ν s (Majorana?) heavy generations? Yukawa interactions CKM mixing, small CP Higgs sector: EW symmetry breaking driven by self-interactions non-minimal Higgs sectors? H i,a,h ± more CP? Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 21

The Standard Model and ideas beyond fermions bosons extensions / unifications? SU(3) SU(2) U(1) gauge interactions more gauge bosons: Z, W, X, Y Gauge bosons: γ, Z, W ±, g Matter: (chiral) quarks+leptons non-standard ν s (Majorana?) heavy generations? Yukawa interactions CKM mixing, small CP Higgs sector: EW symmetry breaking driven by self-interactions non-minimal Higgs sectors? H i,a,h ± more CP? Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 21

The Standard Model and ideas beyond fermions neutralinos/charginos χ 0 / χ ± SUSY? bosons sfermions f extensions / unifications? SU(3) SU(2) U(1) gauge interactions more gauge bosons: Z, W, X, Y Gauge bosons: γ, Z, W ±, g Matter: (chiral) quarks+leptons non-standard ν s (Majorana?) heavy generations? Yukawa interactions CKM mixing, small CP Higgs sector: EW symmetry breaking driven by self-interactions non-minimal Higgs sectors? H i,a,h ± more CP? Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 21

The Standard Model and ideas beyond fermions neutralinos/charginos χ 0 / χ ± SUSY? bosons sfermions f extensions / unifications? SU(3) SU(2) U(1) gauge interactions more gauge bosons: Z, W, X, Y Gauge bosons: γ, Z, W ±, g Matter: (chiral) quarks+leptons non-standard ν s (Majorana?) heavy generations? Yukawa interactions CKM mixing, small CP Higgs sector: EW symmetry breaking driven by self-interactions non-minimal Higgs sectors? H i,a,h ± more CP? + more exotic ideas (extra dimensions, little Higgs,... ) Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 21

Electroweak (EW) issues at the LHC covered in this lecture series Higgs physics: Higgs discovery, analysis of its quantum numbers, decay channels, first studies of couplings, extended Higgs sectors production of single EW gauge bosons: EW precision physics (calibration, M W, sin 2 θ lept eff ), strengthen SM consistentcy check and indirect bounds on M H, search for new gauge bosons W, Z EW gauge-boson pair production: find or constrain non-standard couplings among EW gauge bosons triple gauge-boson production and W L W L W L W L : behaviour of longitudinal weak gauge bosons weakly (as in Higgs models) or strongly coupled W L Theoretical requirements: partially developed in this lecture electroweak theory SM, Higgs mechanism, basics of EW precision physics, unstable particles understand hadronic environment QCD-improved parton model, radiative corrections No QCD, no party! Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 22

3 Physics at the LHC Inelastic hadronic collisions: Parton content of the proton: valence quarks uud, sea quarks u, d, c, s, (+b, ) gluons g (+photons γ) Parton distribution functions (PDF) f i/p (x, Q) determine fraction x of the p momentum carried by parton i at factorization scale Q = non-perturbative input (from exp.), but process independent Hard interaction of partons perturbative QCD applicable, model for hard interactions (apart from QCD) enters only here Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 23

Parton model description of hadronic collisions A f a/a a hadronic momenta: hadronic CM energy: p A, p B s = EA + E B B f b/b b ˆσ C partonic momenta: partonic CM energy: p a = x A p A, p b = x B p B ŝ = xa x B s Hadronic cross section for AB C + X: Z 1 Z 1 X σ AB C+X (s) = dx A dx B f a/a (x A, Q) f b/b (x B, Q) ˆσ ab C (ŝ,q) 0 0 a,b (X = any hadronic remnant/activity) Factorization scale Q separates soft from hard contributions. Q dependence of PDFs f a/a (x A,Q) ruled by DGLAP evolution equations Q dependence of hard scattering cross section ˆσ ab C (ŝ, Q) universal Q drops out in all-order calculations for σ AB C+X (s) residual Q dependence in finite-order predictions reflects theoretical uncertainty Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 24

Kinematical range in terms of PDF variables M = parton parton invariant mass y = rapidity of partonic CM frame (y=0 partonic CM frame not boosted) LHC explores new territory in (x, Q) PDF extrapolation from existing data not sufficient, LHC data have to be included in new PDF fits Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 25

Parton distribution functions DGLAP evolution to larger Q shifts PDFs to lower x enhancement of sea-quark and gluon PDFs Processes with both gg and q q channels (e.g. t t production) Tevatron: q q often dominates by 90% LHC: gg often much more important than q q Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 26

An idea about PDF uncertainties: Uncertainties estimated from eigenvector analysis of χ 2 fit uncertainties 5 10% for x 10 4 10 1 Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 27

Some Standard Model cross sections at the Tevatron (p p) and the LHC (pp) # events = σ luminosity design luminosity: 100fb 1 a 1 /exp. 2 experiments in 5 years: σ 1 pb 10 6 events precision physics (systematics dominates uncertainty) σ 1 fb 10 3 events good prospects for searches (statistics dominates uncertainty) BUT: inclusive cross sections reduced by branching ratios, event selection, experimental efficiencies, etc. Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 28

Production probability versus experimental reconstruction Realistic event numbers do not follow from total cross sections for various reasons hadronically decaying particles (W, Z, t, H) cannot be reconstructed without additional signature e.g. BR(W leptons) 1/3, BR(W hadrons) 2/3, similar for t bw with subsequent W decay no full coverage of detectors e.g. ATLAS: y < 2.5(inner tracker), 2.7(muons), 3.2(em.cal.), 4.9(had.cal.) event selection cuts might be necessary to reduce background e.g. in Higgs production via vector-boson fusion : σ H+2jets reduced by factor 2 3 (2 antipodal hard jets with rapidity gap) tagging efficiencies are not 100% e.g. b tagging in vertex detectors 30 60% Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 29

An example: Higgs discovery potential of ATLAS and CMS Signal significance does not follow total hierarchy of 10 2 10 gg H σ(pp H+X) [pb] s = 14 TeV M t = 175 GeV CTEQ4M cross sections for different channels 1 10-1 qq _ HW qq Hqq differs between ATLAS and CMS 10-2 10-3 10-4 gg,qq _ Hbb _ gg,qq _ Htt _ qq _ HZ 0 200 400 600 800 1000 M H [GeV] Signal significance 10 2 L dt = 30 fb -1 (no K-factors) ATLAS H γ γ tth (H bb) H ZZ (*) 4 l H WW (*) lνlν qqh qq WW (*) qqh qq ττ Total significance 10 1 100 120 140 160 180 200 m H (GeV/c 2 ) Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 30

Parton model and reality Theoretical separation of hard and soft interaction not possible in events! Soft physics has to be understood: Underlying events (UE): everything except for the hard process of interest (more than one definition for UE on the market) UE are not independent from hard scattering (colour and momentum correlated) UE comprise: ISR/FSR (coherent emission belongs to the hard process) multiple parton interactions beam remnants and interaction with beam remnants UE increase with collider energy, large effects expected for jets at the LHC Minimum bias events (MBE): elastic, soft inelastic and diffractive events Tevatron: 1% of all MBE events have a jet with p T > 10GeV pile-up events : accumulating activity from multiple proton scattering per bunch crossing Little theoretical understanding, extrapolation from Tevatron to LHC very uncertain Measurements and modelling necessary at the LHC! Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 31

A simulated event at the LHC... before event reconstruction: Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 32

A simulated event at the LHC... before event reconstruction:... after event reconstruction: Universität Wien, October 2007 Stefan Dittmaier (MPI München), Electroweak Physics at the LHC Introductory Lecture 32