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Affine Boolean classification in secret image sharing for progressive quality access control

机译:秘密图像共享中的仿射布尔分类,用于渐进质量访问控制

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摘要

Secret sharing plays an important role in confidential data protection by splitting the data into few noise-like shares or shadows. In the existing essential threshold based secret image sharing scheme, the decoding process depends on the essential as well as on the non-essential components. This paper proposes an essential threshold based progressive secret image sharing scheme. Affine Boolean functions are used to generate 2' noise-like shares in 'i' levels, out of which at least 's'(2~(i-1)) shares are considered as essential and the rest are non-essential shares. Essential shares suffice to reconstruct/decode the secret image with a certain level of recognizability. The contribution of the non-essential part progressively aids on the quality of the reconstructed image. Robustness in term of decoding reliability of the proposed method is also studied against a set of common operations including random gain change on the share images. Extensive simulation results are also shown to validate the efficacy of the proposed method over a large number of existing works.
机译:秘密共享通过将数据分成很少的类似噪声的共享或阴影,在机密数据保护中发挥重要作用。在现有的基于本质阈值的秘密图像共享方案中,解码过程取决于本质以及非本质成分。本文提出了一种基于阈值的渐进秘密图像共享方案。仿射布尔函数用于生成'i'级的2'类噪声份额,其中至少有's'(2〜(i-1))个份额被视为必不可少的份额,其余份额为非必需份额。 Essential共享足以以一定程度的可识别性重建/解码秘密图像。非必要部分的贡献逐渐有助于重建图像的质量。还针对包括共享图像上的随机增益变化在内的一组常见操作,研究了所提出方法的解码可靠性方面的鲁棒性。还显示了广泛的仿真结果,以验证该方法在大量现有工作中的有效性。

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