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Accelerating template generation in resonant anomaly detection searches with optimal transport

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arxiv 2407.19818 v1 pith:ZX5KTFIP submitted 2024-07-29 hep-ph hep-ex

Accelerating template generation in resonant anomaly detection searches with optimal transport

classification hep-ph hep-ex
keywords rad-otresonantoptimaltransportanomalydetectionconditionaldensity
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We introduce Resonant Anomaly Detection with Optimal Transport (RAD-OT), a method for generating signal templates in resonant anomaly detection searches. RAD-OT leverages the fact that the conditional probability density of the target features vary approximately linearly along the optimal transport path connecting the resonant feature. This does not assume that the conditional density itself is linear with the resonant feature, allowing RAD-OT to efficiently capture multimodal relationships, changes in resolution, etc. By solving the optimal transport problem, RAD-OT can quickly build a template by interpolating between the background distributions in two sideband regions. We demonstrate the performance of RAD-OT using the LHC Olympics R\&D dataset, where we find comparable sensitivity and improved stability with respect to deep learning-based approaches.

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    hep-ph 2026-04 unverdicted novelty 5.0

    A combined kitchen sink observable set of Energy Flow Polynomials and subjettiness variables outperforms standard baselines in sensitivity to a wide range of resonant signals, with new public benchmarks released and a...