Accelerating FRB Search: Dataset and Methods
Xuerong Guo, Han Wang, Yifan Xiao, Huaxi Chen, Yinan Ke, ChenChen Miao, Pei Wang, Di Li, Chenwu Jin, Ling He, Yi Feng, Yongkun Zhang, Jiaying Xu, Guangyong Chen

TL;DR
This paper introduces the FAST-FREX dataset and a novel machine learning algorithm, RaSPDAM, significantly improving the efficiency and accuracy of Fast Radio Burst detection using radio telescope data.
Contribution
The paper presents a new dataset and a machine learning method that outperforms traditional algorithms in FRB detection, advancing the field's capabilities.
Findings
RaSPDAMv2 achieves 97% precision and 83% recall.
The new dataset includes 600 positive and 1000 negative samples.
RaSPDAM outperforms PRESTO and Heimdall in accuracy and efficiency.
Abstract
Fast Radio Burst (FRB) is an extremely energetic cosmic phenomenon of short duration. Discovered only recently and with its origin still unknown, FRBs have already started to play a significant role in studying the distribution and evolution of matter in the universe. FRBs can only be observed through radio telescopes, which produce petabytes of data, rendering the search for FRB a challenging task. Traditional techniques are computationally expensive, time-consuming, and generally biased against weak signals. Various machine learning algorithms have been developed and employed, all of which require substantial datasets. We here introduce the FAST dataset for Fast Radio bursts EXploration (FAST-FREX), built upon the observations obtained by the Five-hundred-meter Aperture Spherical radio Telescope (FAST). Our dataset comprises 600 positive samples of observed FRB signals from three…
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Taxonomy
TopicsAlgorithms and Data Compression · Natural Language Processing Techniques · Handwritten Text Recognition Techniques
