2022
DOI: 10.11591/ijeecs.v27.i2.pp885-891
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Low feature dimension in image steganographic recognition

Abstract: Steganalysis <span>aids in the detection of steganographic data without the need to know the embedding algorithm or the "cover" image. The researcher's major goal was to develop a Steganalysis technique that might improve recognition accuracy while utilizing a minimal feature vector dimension. A number of Steganalysis techniques have been developed to detect steganography in images. However, the steganalysis technique's performance is still limited due to their large feature vector dimension, which takes… Show more

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