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An efficient multi-predictor reversible data hiding algorithm based on performance evaluation of different prediction schemes

机译:基于不同预测方案性能评估的高效多变量可逆数据隐藏算法

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With the broad development and evolution of digital data exchange, security has become an important issue in data storage and transmission since digital data can be easily manipulated and modified. Reversible data hiding algorithms are special class of steganography that are capable of recovering the original cover image upon the extraction of the secret data. This issue is of interest in medical and military imaging applications. Many algorithms in this class exploit the idea of prediction in order to increase the embedding capacity as well as the quality of the stego image. However, the performance of these algorithms depends on the type of predictor that is being used. The main goal in this paper is to survey different predictors and evaluate their performance when employed in two classical reversible data hiding algorithms. The evaluation considered plugging 22 predictors in the two algorithms to process 1438 test images. Experimental results validated the varying capabilities of different predictors and showed that the non-causal median predictor had the best performance in the two algorithms. Further more, the paper proposes a new multi-predictor reversible data hiding algorithm. Basically, the algorithm employs multiple predictors in an extended version of the modification of prediction errors (MPE) algorithm. The algorithm takes advantage of the results obtained from the performance evaluation of different predictors to select the best set of predictors. Performance evaluation proved the ability of the proposed algorithm in increasing the embedding capacity while maintaining high stego image quality.
机译:随着数字数据交换的广泛发展和发展,安全性已成为数据存储和传输中的重要问题,因为可以轻松地操纵和修改数字数据。可逆数据隐藏算法是一类特殊的隐写术,能够在提取秘密数据后恢复原始封面图像。该问题在医学和军事成像应用中引起关注。此类中的许多算法都采用了预测的思想,以提高嵌入能力和隐身图像的质量。但是,这些算法的性能取决于所使用的预测变量的类型。本文的主要目标是调查两种不同的预测变量并评估其在两种经典可逆数据隐藏算法中的性能。评估考虑在这两种算法中插入22个预测变量,以处理1438个测试图像。实验结果验证了不同预测器的变化能力,并表明非因果中值预测器在两种算法中具有最佳性能。此外,本文提出了一种新的多预测器可逆数据隐藏算法。基本上,该算法在预测错误修改(MPE)算法的扩展版本中采用多个预测变量。该算法利用从不同预测变量的性能评估中获得的结果来选择最佳预测变量集。性能评估证明了该算法在保持高隐身图像质量的同时提高嵌入能力的能力。

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