Paper
10 October 2023 A new feature extraction method for short wave signal
Sun Peng, Lu Xu
Author Affiliations +
Proceedings Volume 12799, Third International Conference on Advanced Algorithms and Signal Image Processing (AASIP 2023); 127992E (2023) https://doi.org/10.1117/12.3005921
Event: 3rd International Conference on Advanced Algorithms and Signal Image Processing (AASIP 2023), 2023, Kuala Lumpur, Malaysia
Abstract
Shortwave signal type recognition plays a very important role in the field of non-cooperative communication, but because of the low signal-to-noise ratio of the shortwave channel, it is often very difficult to identify the shortwave signal type. In this paper, the difference between signal and noise in the wavelet transform is utilized, and the method of correlation denoising is adopted to process the wavelet transform sequence. The correlation denoising wavelet and is taken as the signal characteristics so as to effectively reduce the influence of noise on the signal. Through the experimental performance analysis of 6 kinds of 8PSK signals, the correlation denoising wavelet and feature extraction method proposed in this paper can effectively reduce the impact of noise, and still be effective under the condition of low SNR. Finally, by using the features proposed in this paper as the input of the deep learning network, the recognition accuracy of 98.5% can be achieved when the SNR is 6dB.
(2023) Published by SPIE. Downloading of the abstract is permitted for personal use only.
Sun Peng and Lu Xu "A new feature extraction method for short wave signal", Proc. SPIE 12799, Third International Conference on Advanced Algorithms and Signal Image Processing (AASIP 2023), 127992E (10 October 2023); https://doi.org/10.1117/12.3005921
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KEYWORDS
Wavelets

Denoising

Signal to noise ratio

Wavelet transforms

Interference (communication)

Evolutionary algorithms

Feature extraction

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