FAST-MEPSA: an optimised and faster version of peak detection algorithm MEPSA
Manuele Maistrello, Romain Maccary, Cristiano Guidorzi

TL;DR
FAST-MEPSA is an optimized, faster peak detection algorithm that improves efficiency and sensitivity for analyzing noisy time series, especially in gamma-ray burst data, with minimal loss in detection accuracy.
Contribution
The paper introduces FAST-MEPSA, a significantly faster version of MEPSA with an added pattern to detect elusive peaks, enhancing performance for large-scale transient data analysis.
Findings
Achieves nearly 400x speed-up at high re-binning factors.
Maintains detection efficiency with only 4% fewer peaks detected.
Reduces false positives significantly.
Abstract
We present FAST-MEPSA, an optimised version of the MEPSA algorithm developed to detect peaks in uniformly sampled time series affected by uncorrelated Gaussian noise. Although originally conceived for the analysis of gamma-ray burst (GRB) light curves (LCs), MEPSA can be readily applied to other transient phenomena. The algorithm scans the input data by applying a set of 39 predefined patterns across multiple timescales. While robust and effective, its computational cost becomes significant at large re-binning factors. To address this, FAST-MEPSA introduces a sparser offset-scanning strategy. In parallel, building on MEPSA's flexibility, we introduce a 40th pattern specifically designed to recover a class of elusive peaks that are typically sub-threshold and lie on the rising edge of broader structures - often missed by the original pattern set. Both versions of FAST-MEPSA - with 39 and…
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Taxonomy
TopicsGamma-ray bursts and supernovae · Statistical and numerical algorithms · Gaussian Processes and Bayesian Inference
