Early SUSY searches at the LHC
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- Patience Baldwin
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1 Early SUSY searches at the LHC Alex Tapper on behalf of the ATLAS & CMS collaborations HCP2009 Hadron Collider Physics Symposium November 2009 Evian, France Topics Results from the Tevatron LHC & Experiment Commissioning Standard-Model Physics Higgs Physics Exotica Illustration: Sergio Cittolin Introduction Search strategy Searches Background estimates Discovery reach Summary Local Organizing Committee M. Berthier (IN2P3/CNRS) N. Bleesz-Griggs (CERN) G. Boudoul (IN2P3/CNRS) A. Cerri (CERN) T. Christiansen (CERN) C. Demirdjian (CERN) L. Dobrzynski (IN2P3/CNRS), Co-Chair C. Goy (IN2P3/CNRS) D. Hudson (CERN) T. Koffas (CERN) A. Lucotte (IN2P3/CNRS) P. Mage-Granados (CERN) L. Malgeri (CERN) C. Potter (CERN) E. Rondio (CERN) D. Rousseau (IN2P3/CNRS) V. Sharyy (IRFU) E. Tsesmelis (CERN), Co-Chair A. Vignes-Magno (CERN) Office de tourisme d Evian International Advisory Committee E. Auge (IN2P3/CNRS), Co-Chair U. Bassler (CEA/IRFU) G. Bernardi (LPNHE) S. Bertolucci (CERN), Co-Chair H.S. Chen (IHEP) M. Della-Negra (CERN) D. Denisov (FNAL) A. Djouadi (LPT) J. Engelen (NWO) F. Gianotti (CERN) A. Golutvin (Imperial) Y.K. Kim (Chicago) J. Koenigsberg (Florida) Z. Kunszt (ETHZ) M. Mangano (CERN) J. Mnich (DESY) H. Schellman (NorthWestern) J. Schukraft (CERN) K. Tokushuku (KEK) W. Trischuk (Toronto) G. Wormser (LAL Orsay) i r f u saclay Programme Committee D. Charlton (Birmingham) K. Ellis (Fermilab) D. Fournier (LAL Orsay) P. Jenni (CERN), Co-Chair A. Juste (Fermilab) S. Myers (CERN) T. Nakada (EPFL) K. Pitts (Illinois) K. Safarik (CERN) Y. Sirois (Palaiseau) P. Sphicas (CERN/Athens) J. Stirling (Cambridge) T. Virdee (CERN/Imperial), Co-Chair Contact: info-hcp2009@cern.ch Conference Secretary: A. Vignes-Magno 1
2 Introduction Many different SUSY scenarios investigated by ATLAS & CMS My brief is to describe plans for early SUSY searches What we plan to do with the 2010 data Stick to studies at 10 TeV centre-of-mass energy and < 1 fb -1 of data Some comments on 7 TeV centre-of-mass towards the end Break my own rule only to illustrate some background methods 2
3 Search strategy Be as model independent as possible But the MSSM has > 100 parameters Need more constrained models Choose a set of benchmark points that are representative of a range of topologies and areas of phase space Range of models MSUGRA (high and low masses) GMSB Split SUSY In this talk MSUGRA at low masses, just above the Tevatron SU4 for ATLAS Full details of benchmark points in backup slides 3
4 Search strategy Be as model independent as possible But the MSSM has > 100 parameters Need more constrained models Choose a set of benchmark points that are representative of a range of topologies and areas of phase space Range of models MSUGRA (high and low masses) GMSB Split SUSY In this talk MSUGRA at low masses, just above the Tevatron LM0 and LM1 for CMS m 1/2 (GeV) MSUGRA, tanβ = 10, A 0 = 0, µ > τ ~ 1 LSP 7 HM1 Br( χ ~ 2 0 l ~ l) > 0.15 HM2 LM6 LM5 LM2 LM4 LM1 LM LM8 m(e ~ L )<m(χ 2 0 ) HM3 m χ = 103 GeV m 0 (GeV) m(u ~ L ) > m(g~ ) Br( χ ~ 0 2 h 0 χ ~ 0 1) > 0.5 Br( χ ~ 2 0 Z 0 χ ~ 1 0 ) > 0.5 m h = 122 GeV m h = 120 GeV m(t ~ 1 ) < m(g~ ) m h = 114 GeV ~ l Teva tron NO EWSB J. Phys. G: Nucl. Part. Phys. 34 (2006) 8 HM4 LM9 Full details of benchmark points in backup slides LM10 LM
5 Search strategy Production Squark and gluino expected to dominate Strong production so high cross section Cross section depends only on masses Approx. independent of SUSY model 5
6 Search strategy Production Squark and gluino expected to dominate Strong production so high cross section Cross section depends only on masses Approx. independent of SUSY model Decay Details of decay chain depend on SUSY model (mass spectra, branching ratios, etc.) Assume R P conserved decay to lightest SUSY particle (LSP) Assume squarks and gluinos are heavy long decay chains Signatures MET from LSPs, high-e T jets and leptons from long decay chain Focus on robust and simple signatures Common to wide variety of models Let Standard Model background and detector performance define searches not models 6
7 Searches How might such a generic search look? ATL-PHYS-PUB Simple selection categorise events by numbers of leptons and jets Jet ET > 100 (40) GeV ΔΦ(jeti,MET) > 0.2 rad Lepton ET > 20 (10) GeV MET > 80 GeV Meff = ΣET jet + ΣET lep + MET MET > x Meff ST>0.2 MT > 100 GeV Good S/B for most channels (200 pb 10 TeV COM) but... Backgrounds straight from Monte Carlo Key is measuring SM backgrounds from data with systematics 7
8 Backgrounds Physics Standard Model processes that give the same signatures as SUSY Cannot rely on Monte Carlo predictions measure in data Detector effects Detector noise, mis-measurements etc. that generate MET or extra jets Commissioning and calibration (see previous talks) Beam related Beam-halo muons (and cosmic-ray muons), beam-gas events Data and simulation already measure in situ too 8
9 Backgrounds Data-driven background estimates are the key challenge in early SUSY searches General idea is find a control region where SM is dominant and use this to predict SM background in signal region Two approaches pursued: Matrix (ABCD) methods playing variables off against each other Replacement methods modify SM with same topology as signal to predict signal In both cases need to identify clean SM control region Difficult to avoid using Monte Carlo in some way Will discuss searches giving examples of data-driven methods 9
10 All-hadronic search ATL-PHYS-PUB All-hadronic search highly sensitive to SUSY But suffers from many backgrounds Nice examples of backgrounds both from detector effects and from Standard Model physics 10
11 All-hadronic search Mis-measurement of a jet leads to MET along the jet axis Remove with ΔΦ(jeti,MET) > 0.2 rad arxiv: (2009) Several methods developed to predict MET tail from QCD events Matrix methods to estimate from control regions Smearing method 11
12 All-hadronic search Derive Gaussian part of smearing function from γ + jet control sample arxiv: (2009) Derive non-gaussian part from Mercedes events, requiring that the MET is co-linear with one of the jets Combine smearing functions, normalising with di-jet sample Apply smearing function to low MET events to predict the tail in the high MET signal region 12
13 All-hadronic search jet LSP LSP PRL101: (2008) & CMS-PAS-SUS jet jet jet α T = E T j 2 M T j1 j 2 = E T j 2 / E T j1 2(1 cosδϕ) A novel approach combining angular and energy measurements No dependence on MET robust for early LHC running Originally proposed for di-jet events generalised up to 6 jets Perfectly balanced events have αt=0.5 (cut at αt>0.55) Mis-measurement of either jet leads to lower values 13
14 Background estimates Data-driven background estimates Find a control region in phase space where SM background dominates Use measurements in this region to infer SM background in signal region Example Z νν + jets irreducible background ν Z MET ν Replacement technique µ µ µ ν Z W γ Z ll + jets Strength: very clean Weakness: low statistics W lν + jets Strength: larger statistics Weakness: background from SM and SUSY γ + jets Strength: large statistics and clean at high ET Weakness: background at low ET, theoretical errors 14
15 Background estimates Select γ + 3 jets with Eγ>150 GeV CMS-PAS-SUS Clean sample S/B>20 Remove photon from the event Recalculate MET Normalise with σ(z+jets)/σ(γ+jets) from MC or measurements 100 pb 14 TeV COM 15
16 Single-lepton search ATL-PHYS-PUB Requiring one lepton (e or µ) suppresses QCD background powerfully Highly sensitive to SUSY Backgrounds come from Standard Model processes with neutrinos real MET In particular top and W decays 16
17 Background estimates Data-driven background estimates Find a control region in phase space where SM background dominates Use measurements in this region to infer SM background in signal region Example W, top backgrounds to single-lepton search Playing two discriminate quantities off against each other Well known matrix (MT) method Use low M T control region Predict MET spectrum Weaknesses Non-independence of variables Signal contamination More sophisticated methods ATL-PHYS-PUB
18 Tiles method Background estimates Use the Monte Carlo prediction for the shapes of SM backgrounds Assume independence of variables for signal ATL-PHYS-PUB [GeV] M T SM ATLAS Preliminary [GeV] M T SUSY (SU3) ATLAS Preliminary B D B D A C 100 A C [GeV] M eff [GeV] M eff Figure 2: Transverse mass (M T ) versus effective mass (M eff ) distributions for simulated SM background events (left) and SUSY SU3 events (right). Indicated by the capital letters are the 2 2 tiles determined Can express Nevts in each region in terms of f SM and f SUSY Take f SM by the cross borders along M from MC for each eff = 800 GeV and M region T = 100 GeV. The correlation coefficients are 6.6% solve the system of linear equations (SM) and 10.7% (SU3). hypothesis is excluded, the signal events must be distributed differently from the SM background, otherwise their discrimination from background would not be possible. On the other hand, if no significant signal is present, a distribution of signal events among the tiles cannot be determined so that also the signal abundance itself is undetermined. The no-signal case is therefore not detected by a vanishing signal yield (which can be anything), but by a solution of the tiles method (either analytical, or via a fit) that is XX th Hadron Collider approximately Physics independent Symposium, of the16 signal - 20 yield November, that is assumed. 2009, 3) Evian, The no-signal France. case is effectively equal to the case where signal and background distributions are indistinguishable. Both cases would exhibit Predicts the number of SM background and SUSY signal events in each region Background prediction not biassed by signal contamination 18
19 Di-lepton searches ATL-PHYS-PUB Low yields but very interesting properties Same sign searches Very low Standard Model background rate Backgrounds from charge mis-identified top events (QCD in τ channel) Opposite sign Use opposite-sign, opposite-flavour sample to subtract SM background 19
20 Di-lepton searches CMS-PAS-SUS Fit ee, µµ and eµ distributions simultaneously Resolution function and efficiencies from data 200 pb 10 TeV Di-leptonic end-point m ll,max=51.3 ± 1.5 (stat.) ± 0.9 (syst.) GeV [52.7 GeV] Nice example of what could be done with modest dataset 20
21 Discovery 10 TeV ATL-PHYS-PUB Scan Meff cut for best sensitivity (50% error on backgrounds) All-hadronic and single-lepton searches vie for highest sensitivity Clear discovery potential beyond the Tevatron with 200 pb 10 TeV 21
22 Discovery 7 TeV Chamonix 2009 Discovery reach for single-lepton + jets + MET channel 4 Need to get above the 400 GeV line to be competitive Possible with > 100 pb 7 TeV 10 TeV much better! 22
23 Summary Early searches based on robust generic signatures Sensitive as possible to a variety of new physics models A wide range of data-driven techniques developed to measure efficiencies and backgrounds Redundancy builds confidence Eagerly awaiting LHC collisions! 23
24 Backup: Links ATLAS latest results ATLAS Physics TDR CMS latest results CMS Physics TDR 24
25 Backup: Benchmark points 25
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