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This search finds events with a displaced vertex and a displaced muon to be consistent with background, and uses that consistency to set 95% confidence-level exclusions on massive long-lived particles, including higgsinos up to 1600 GeV and

Reviewed by Pith at T0; open to challenge. T0 means a machine referee read the full paper against a public rubric. the ladder, T0–T4 →

T0 review · deepseek-v4-flash

2026-08-02 19:27 UTC pith:RKWVDCGJ

load-bearing objection Solid Run 3 LLP search: real trigger/reconstruction gains and straightforward limits, with one background-validation non-closure patched conservatively rather than explained — worth refereeing, not worth rejecting. the 2 major comments →

arxiv 2603.01991 v2 pith:RKWVDCGJ submitted 2026-03-02 hep-ex

Search for massive, long-lived particles in events with displaced vertices and displaced muons in pp collisions at sqrt{s}=13.6 TeV with the ATLAS experiment

classification hep-ex
keywords long-lived particlesdisplaced vertexdisplaced muonR-parity violationsupersymmetrytransfer factorLHC Run 3exclusion limits
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved

The pith

A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.

The paper analyzes 164 inverse femtobarns of proton-proton collisions at 13.6 TeV collected from 2022 to 2024, looking for long-lived particles that decay inside the inner detector into at least one displaced vertex and one muon with large impact parameter. It establishes that the observed events are fully consistent with Standard Model background, with no significant excess in either of the two signal regions. Based on this null result, it sets model-independent upper limits on the visible cross-section and, for the first time in this Run-3 dataset, excludes higgsino masses up to 1600 GeV and top-squark masses up to 1850 GeV in representative R-parity-violating supersymmetry benchmarks at a proper lifetime of 0.1 ns. A sympathetic reader cares because this closes a gap in long-lived-particle searches, improves on earlier results by roughly two orders of magnitude for the lepton-number-violating higgsino scenario, and demonstrates that a fully data-driven background estimate can be used in a low-background search.

Core claim

The central claim is that no new physics appears in events with a displaced vertex and a displaced muon. In the far signal region, three events are observed against 1.8 +/- 1.1 predicted background; in the near signal region, one event is observed against 2.9 +/- 0.8 predicted. A profile likelihood fit to the reduced invariant mass of the displaced vertex yields 95% confidence-level upper limits on the visible cross-section, the most stringent being 0.018 fb when only the highest-mass bin of either signal region is used. Interpreting the result in R-parity-violating supersymmetry, the paper excludes higgsino pair production with lambda'_211 decays up to 1600 GeV and with lambda''_323 decays

What carries the argument

The analysis is carried by a fully data-driven transfer-factor method. For each of four muon background sources (heavy-flavour decays, cosmic rays, and algorithmic fakes split into barrel and endcap), the number of signal-region events is estimated as the product of the yield in regions where only the muon veto is inverted and a transfer factor derived from regions where the displaced-vertex selection is relaxed, relying on the independence of the muon-veto and displaced-vertex selection probabilities. The discriminating variable used in the final fit is the reduced invariant mass of the displaced vertex, m_red_DV = m_DV / DeltaR_max, where DeltaR_max is the largest angular separation betwee

Load-bearing premise

The background estimate assumes that, for background events, the probability of passing the muon-veto selections is independent of whether the event contains a displaced vertex that passes the signal selection.

What would settle it

In the far-vertex validation region with m_DV < 20 GeV, the transfer-factor method predicts 16 +/- 4 events while only 6 are observed; if this deficit persists and grows in significance with a larger dataset, or if an independent simulation-based background estimate disagrees with the transfer-factor prediction in the same region, the core independence assumption would be falsified.

Watch this falsifier — get emailed when new claim-graph text bears on it.

If this is right

  • If the results are correct, R-parity-violating higgsino and top-squark scenarios with masses below the quoted exclusions and lifetimes around 0.1 ns are disfavored as the lightest supersymmetric particle.
  • The data-driven transfer-factor background estimate, validated in zero-vertex and material-vetoed control regions, provides a template for future low-background displaced-object searches without relying on absolute Monte Carlo background predictions.
  • The new displaced-muon trigger with a 20 GeV threshold extends sensitivity to lower-mass long-lived particles and short lifetimes compared with Run-2 searches that required higher-momentum or missing-transverse-momentum triggers.
  • The observed discrepancy in the far-vertex, m_DV < 20 GeV validation region—16 +/- 4 predicted versus 6 observed—is incorporated as an additional 77% systematic uncertainty on the heavy-flavour background in the far signal region, and this uncertainty dominates the total background error in that region.
  • The model-independent visible cross-section limits, such as 0.018 fb in the highest reduced-mass bin, can be reinterpreted by other models of displaced decays without re-running the full analysis.

Where Pith is reading between the lines

These are editorial extensions of the paper, not claims the author makes directly.

  • If the independence assumption behind the transfer-factor method has a residual correlation that grows toward lower displaced-vertex mass, the 16-versus-6 discrepancy in the far m_DV < 20 GeV region might be the first sign of a systematic bias rather than a statistical fluctuation; a dedicated closure test with more data would settle which of these it is.
  • The success of the low-threshold displaced-muon trigger suggests that analogous displaced-electron or displaced-tau triggers could similarly extend long-lived-particle searches without new hardware, changing the expected background composition in signal regions.
  • The exclusion contours leave a complementary gap at very short lifetimes, where a beam-pipe-optimized displaced-vertex search is stronger; a joint interpretation of such complementary searches could map the full mass-lifetime plane of R-parity-violating scenarios.
  • The fully data-driven background strategy, if validated further, could reduce reliance on simulation in other rare-signature searches where the signal region is extremely clean, provided the correlation tests are performed in multiple phase-space slices.

Editorial analysis

A structured set of objections, weighed in public.

Desk editor's note, referee report, simulated authors' rebuttal, and a circularity audit.

Referee Report

2 major / 5 minor

Summary. This paper presents a search for massive long-lived particles decaying into a displaced vertex (DV) and a displaced muon, using 164 fb^-1 of sqrt(s)=13.6 TeV pp collision data recorded by ATLAS during Run 3 (2022–2024). Two signal regions (SRfar and SRnear) are defined by the transverse displacement of the DV. Backgrounds from heavy-flavour decays, cosmic-ray muons, and algorithmic fakes are estimated with a fully data-driven transfer-factor method, which assumes that the probabilities for background events to pass the muon vetoes and the DV selection are independent. No significant excess is observed. Upper limits at 95% CL are set on the visible cross-section and on RPV SUSY benchmark models; in particular, higgsino masses up to 1600 GeV for lambda'_211 decays and top-squark masses up to 1850 GeV for lambda'_233 decays are excluded at tau=0.1 ns.

Significance. If the result holds, it significantly extends LHC sensitivity to long-lived particles with displaced muons, exploiting a new Run-3 displaced-muon trigger and improved large-impact-parameter tracking. The higgsino lambda'_211 limits improve on Run-1 by about two orders of magnitude, and the top-squark lambda'_233 limits extend coverage at short lifetimes. The data-driven transfer-factor method is described in unusual detail, with multiple validation regions and systematic cross-checks. However, the central claim relies on an independence assumption that shows a notable non-closure in one validation region (far DV, m_DV<20 GeV), handled by an ad hoc 77% systematic. This weakens, but does not by itself invalidate, the central conclusion of no excess.

major comments (2)
  1. [Section 6.3] The far-DV validation region with n_track>=4 and m_DV<20 GeV shows a significant non-closure: 16±4 predicted vs 6 observed. This is not a small discrepancy, and it directly probes the same high-track-count, signal-like DV topology as SRfar, except for the m_DV threshold. The response is to assign an ad hoc 77% systematic to the heavy-flavour background in SRfar, but this leaves the central prediction unchanged and does not establish that the transfer factor is unbiased at m_DV>=20 GeV. Since SRfar is the signal region, there is no direct validation of the independence assumption where it matters. Please either correct the central prediction using an m_DV-dependent TF or a data-derived correction factor, or provide a quantitative demonstration that the 77% systematic covers the plausible range of m_DV-dependent biases. At minimum, report the p-value of the non-closure accounting for the n
  2. [Sections 6.2 and 6.3 / Table 1] The 77% non-closure uncertainty is derived from a single validation region and applied only to the heavy-flavour background component in SRfar. The argument that heavy flavour dominates the m_DV<20 region is plausible, but the uncertainty is a one-point estimate with no physical model or closure test behind it. If the true SRfar background is lower than the nominal prediction, the 3 observed events become somewhat more signal-like; if higher, the limits could be anti-conservative. The paper should explicitly discuss the direction of the possible bias and demonstrate that the inflated uncertainty yields conservative limits in either case. A more convincing approach would be to compare TFs in slices of m_DV, n_track, and d_T within the zero-DV and material-map-vetoed control samples to show how the TFs vary with DV properties.
minor comments (5)
  1. [Figure 2] The y-axis of the trigger-efficiency plots extends above 1.0 (up to 1.4). A trigger efficiency cannot exceed 1; please correct the axis range or clarify if the quantity plotted is something else (e.g., acceptance times efficiency).
  2. [General] The manuscript uses inconsistent notation for the vertex mass: 'mDV' and 'm_DV' appear interchangeably. Please unify.
  3. [Section 6 and Figure 3] The region definitions are complex; a small table listing the event counts in each validation region (zero-DV, material-map-vetoed, n_track<4, m_DV<20/40, etc.) would improve readability and allow the reader to assess the non-closure more directly.
  4. [Section 8] Please state explicitly whether the mred_DV bin boundaries (10, 13, 15 GeV) were fixed before examining the data in SRfar/SRnear. If the binning was optimised after unblinding, the coverage of the CLs limits should be discussed.
  5. [Section 3] Minor typo: 'O(10−2 fb)' should be 'O(10^-2 fb)' for clarity.

Circularity Check

0 steps flagged

No significant circularity: the data-driven background estimate and the limits are not self-referential; the transfer-factor method extrapolates from disjoint control regions and signal acceptance comes from independent MC.

full rationale

The paper's central claim—no significant excess and resulting 95% CL limits—is derived from observed event counts in two signal regions (SRfar: 3 events; SRnear: 1 event; Table 2) compared with a fully data-driven background prediction built from transfer factors (Section 6): N_A,i = N_B,i · N_C/N_D,i, where the TFs f_i = N_C/N_D,i are measured in zero-DV and material-map-vetoed control regions that, by construction, exclude the signal-region events. No parameter of the background model is fitted to the signal-region counts, so the prediction does not reduce to the observed result. Signal acceptance and efficiency are computed from independent MadGraph/Pythia/Geant4 simulations with standard ATLAS calibrations; no signal-model parameter is taken from the data. The one validation non-closure (Section 6.3: 16±4 predicted vs 6 observed in the far-DV m_DV<20 GeV region) is explicitly acknowledged and handled by adding a 77% systematic uncertainty on the heavy-flavour background in SRfar—this is a treated limitation (a correctness/validation concern) rather than a circular reduction, since the TF independence assumption remains an external-validity assumption, not a self-referential one. Citations to prior ATLAS/CMS searches are contextual comparisons and benchmarks, not load-bearing inputs to the limit extraction. No equation in the paper defines a predicted quantity in terms of the target outcome, and no fitted parameter is renamed as a prediction.

Axiom & Free-Parameter Ledger

3 free parameters · 4 axioms · 0 invented entities

The paper's central limits rest on three types of ingredients: data-driven transfer factors (which are measured, not free, but are the closest to 'fitted values'), a validated but imperfect independence assumption, and standard signal simulation ingredients. No new particles or ad hoc entities are introduced; the RPV SUSY models are pre-existing benchmarks.

free parameters (3)
  • Transfer factors f_i for heavy-flavour, cosmic-ray, algorithmic fake barrel/endcap = O(10^-2), values not tabulated
    The background prediction in SR is N_A,i = f_i * N_B,i, where f_i = N_C/N_Di derived from control regions in data. These are effective measured parameters that directly set the central background estimate.
  • Non-closure uncertainty on heavy-flavour background in SRfar = ~77%
    Derived from observed discrepancy between predicted (16±4) and observed (6) events in the far DV m_DV<20 GeV validation region. Applied to heavy-flavour yield in SRfar to cover the mismatch.
  • Signal region bin boundaries of mred_DV = SRfar: 10 GeV, 13 GeV; SRnear: 15 GeV
    Chosen to maximize expected sensitivity across benchmark models. These hand-picked boundaries influence the limit extraction but are part of the analysis optimization.
axioms (4)
  • domain assumption The probability for background events to satisfy the muon veto selections is uncorrelated with satisfying the displaced-vertex selection.
    Used in Section 6 to justify the transfer-factor method N_A,i = N_B,i * N_C/N_Di. The paper validates this with data but finds a partial non-closure in one region, indicating the assumption is not perfect.
  • domain assumption The only significant background sources are muons from heavy-flavour decays, cosmic rays, and algorithmic fakes.
    Assumed in Section 6; the transfer-factor regions are constructed to be enriched in these sources and other sources (e.g., W/Z decays with prompt muons) are considered negligible after the displaced-muon selection.
  • domain assumption Signal simulation with MadGraph+Pythia+Geant4 accurately models the LLP production and decay kinematics, including the contact-interaction approximation for higgsino decays and the hadronisation of top squarks into R-hadrons.
    Used in Section 3 to compute acceptance. The paper states that interactions of R-hadrons with detector material are not simulated, which could affect the reconstruction efficiency for stop signal at long lifetimes.
  • domain assumption The production cross-sections from approximate NNLO+NNLL calculations (Resummino) are correct for setting exclusion limits in model parameter space.
    The cross-section curves in Figures 7-8 rely on these theory calculations. The limits on mass and lifetime would shift if the theory cross-sections have large uncertainties, though the observed visible-cross-section limits are model-independent.

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read the original abstract

A search is presented for massive long-lived particles in events featuring at least one displaced vertex and at least one displaced muon, using proton-proton collision data collected by the ATLAS detector at the Large Hadron Collider from 2022 to 2024 at a centre-of-mass energy of 13.6 TeV. The data sample corresponds to an integrated luminosity of 164 fb$^{-1}$. The analysis targets scenarios in which long-lived particles decay inside the ATLAS inner detector, resulting in a topology of at least one massive, displaced vertex (DV) with multiple associated tracks, and at least one muon with a large transverse impact parameter relative to the primary interaction point. The muon is not required to be associated with the DV. Two signal regions are defined by the transverse distance of the reconstructed DV from the interaction point. Background contributions are estimated by using fully data-driven techniques. No significant excess above the expected background is observed. Upper limits at 95% confidence level are set on the visible cross-section and on the production cross-sections of several benchmark models of $R$-parity-violating supersymmetry.

discussion (0)

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  1. Searches for massive, long-lived particles in events with displaced vertices with ATLAS

    hep-ex 2026-04 unverdicted novelty 7.0

    ATLAS sets limits on long-lived particles in Higgs Portal, SUSY, and DFSZ axino models via displaced-vertex searches with new fuzzy reconstruction and muon-trigger techniques in Run 2 and Run 3 data.

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