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Weighted stego-image steganalysis for naive content-adaptive embedding

机译:幼稚的内容自适应嵌入的加权隐秘图像隐写分析

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Weighted stego-image (WS) steganalysis is the state of the art for estimating LSB replacement steganography in spatial domain images. However, the most powerful WS variants designed against random uniform embedding perform poorly against content-adaptive steganography. As a remedy, we propose a novel variant of WS which is specialized in detecting small payloads hidden exclusively in the least detectable spots of a cover, benchmark its performance against known methods, and experimentally investigate the influence of the choice of the adaptivity criterion, i. e., the function that identifies supposedly secure spots in a heterogeneous cover. We find that adaptivity criteria which are hard to recover from the stego image alone provide stronger security against our specialized WS method.
机译:加权隐身图像(WS)隐身分析是用于估计空间域图像中LSB替换隐写术的最新技术。但是,针对随机统一嵌入而设计的最强大的WS变体在针对内容自适应隐写技术方面的表现很差。作为一种补救措施,我们提出了WS的一种新颖变体,该变体专门用于检测专门隐藏在覆盖物的最不易发现的点中的小型有效载荷,并根据已知方法对它的性能进行基准测试,并通过实验研究适应性标准选择的影响, 。例如,该功能可识别异构覆盖物中的假定安全点。我们发现,仅凭隐身映像无法恢复的适应性标准就针对我们的专用WS方法提供了更强的安全性。

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