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An effective blind digital watermarking algorithm based on neural networks in the wavelet domain is presented. Firstly, the host image is decomposed through wavelet transform. The significant coefficients of wavelet are selected according to the human visual system (HVS) characteristics. Watermark bits are added to them. And then effectively cooperates neural networks to learn the characteristics of the embedded watermark related to them. Because of the learning and adaptive capabilities of neural networks, the trained neural networks almost exactly recover the watermark from the watermarked image. Experimental results and comparisons with other techniques prove the effectiveness of the new algorithm.
An effective blind digital watermarking algorithm based on neural networks in the wavelet domain is presented. The significant coefficients of the wavelet are selected according to the human visual system (HVS) characteristics. to them. And then effectively cooperates neural networks to learn the characteristics of the embedded watermark related to them. with other techniques prove the effectiveness of the new algorithm.