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      Feature Extraction Method for Hidden Information in Audio Streams Based on HM-EMD

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      Security and Communication Networks
      Hindawi Limited

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          Abstract

          Using fake audio to spoof the audio devices in the Internet of Things has become an important problem in modern network security. Aiming at the problem of lack of robust features in fake audio detection, an audio streams’ hidden feature extraction method based on a heuristic mask for empirical mode decomposition (HM-EMD) is proposed in this paper. First, using HM-EMD, each signal is decomposed into several monotonic intrinsic mode functions (IMFs). Then, on the basis of IMFs, basic features and hidden information features HCFs of audio streams are constructed, respectively. Finally, a machine learning method is used to classify audio streams based on these features. The experimental results show that hidden information features of audio streams based on HM-EMD can effectively supplement the nonlinear and nonstationary information that traditional features such as mel cepstrum features cannot express and can better realize the representation of hidden acoustic events, which provide a new research idea for fake audio detection.

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          Most cited references14

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          Quantum differential evolution with cooperative coevolution framework and hybrid mutation strategy for large scale optimization

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            A time varying filter approach for empirical mode decomposition

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              The Use of a Masking Signal to Improve Empirical Mode Decomposition

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                Author and article information

                Contributors
                Journal
                Security and Communication Networks
                Security and Communication Networks
                Hindawi Limited
                1939-0122
                1939-0114
                August 2 2021
                August 2 2021
                : 2021
                : 1-12
                Affiliations
                [1 ]Harbin Institute of Technology, School of Computer Science and Technology, Harbin 150001, China
                Article
                10.1155/2021/5566347
                0e97663c-35b6-49b0-aa74-58e18b58e8b9
                © 2021

                https://creativecommons.org/licenses/by/4.0/

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