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- W3089572932 abstract "Modern radar systems have high requirements in terms of accuracy, robustness and real-time capability when operating on increasingly complex electromagnetic environments. Traditional radar signal processing (RSP) methods have shown some limitations when meeting such requirements, particularly in matters of target classification. With the rapid development of machine learning (ML), especially deep learning, radar researchers have started integrating these new methods when solving RSP-related problems. This paper aims at helping researchers and practitioners to better understand the application of ML techniques to RSP-related problems by providing a comprehensive, structured and reasoned literature overview of ML-based RSP techniques. This work is amply introduced by providing general elements of ML-based RSP and by stating the motivations behind them. The main applications of ML-based RSP are then analysed and structured based on the application field. This paper then concludes with a series of open questions and proposed research directions, in order to indicate current gaps and potential future solutions and trends." @default.
- W3089572932 created "2020-10-08" @default.
- W3089572932 creator A5008141914 @default.
- W3089572932 creator A5022116755 @default.
- W3089572932 creator A5024840222 @default.
- W3089572932 creator A5031241828 @default.
- W3089572932 creator A5040948814 @default.
- W3089572932 creator A5052386527 @default.
- W3089572932 creator A5072732366 @default.
- W3089572932 date "2020-09-29" @default.
- W3089572932 modified "2023-09-26" @default.
- W3089572932 title "A Comprehensive Survey of Machine Learning Applied to Radar Signal Processing." @default.
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