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FETCH: A deep-learning based classifier for fast transient classification

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arxiv 1902.06343 v2 pith:RVZH7B5J submitted 2019-02-17 astro-ph.IM

FETCH: A deep-learning based classifier for fast transient classification

classification astro-ph.IM
keywords classificationcandidatecandidatesalgorithmsfastfetchfrbslearning
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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With the upcoming commensal surveys for Fast Radio Bursts (FRBs), and their high candidate rate, usage of machine learning algorithms for candidate classification is a necessity. Such algorithms will also play a pivotal role in sending real-time triggers for prompt follow-ups with other instruments. In this paper, we have used the technique of Transfer Learning to train the state-of-the-art deep neural networks for classification of FRB and Radio Frequency Interference (RFI) candidates. These are convolutional neural networks which work on radio frequency-time and dispersion measure-time images as the inputs. We trained these networks using simulated FRBs and real RFI candidates from telescopes at the Green Bank Observatory. We present 11 deep learning models, each with an accuracy and recall above 99.5% on our test dataset comprising of real RFI and pulsar candidates. As we demonstrate, these algorithms are telescope and frequency agnostic and are able to detect all FRBs with signal-to-noise ratios above 10 in ASKAP and Parkes data. We also provide an open-source python package FETCH (Fast Extragalactic Transient Candidate Hunter) for classification of candidates, using our models. Using FETCH, these models can be deployed along with any commensal search pipeline for real-time candidate classification.

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  1. Neural networks in the search for fast radio bursts with RATAN-600

    astro-ph.IM 2025-09 conditional novelty 6.0

    A 1D EfficientNet-based cascade trained on synthetic FRBs detects typical dispersed bursts at SNR above 4 with about two false positives per day on four-channel RATAN-600 data.