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Embedding Renewable Cryptographic Keys into Continuous Noisy Data

机译:将可再生加密密钥嵌入到连续嘈杂的数据中

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Fuzzy extractor is a powerful but theoretical tool to extract uniform strings from discrete noisy data. Before it can be used in practice, many concerns need to be addressed in advance, such as making the extracted strings renewable and dealing with continuous noisy data. We propose a primitive fuzzy embedder as a practical replacement for fuzzy extractor. Fuzzy embedder naturally supports renewability because it allows a randomly chosen string to be embedded. Fuzzy embedder takes continuous noisy data as input and its performance directly links to the property of the input data. We give a general construction for fuzzy embedder based on the technique of Quantization Index Modulation (QIM) and derive the performance result in relation to that of the underlying QIM. In addition, we show that quantization in 2-dimensional space is optimal from the perspective of the length of the embedded string. We also present a concrete construction for fuzzy embedder in 2-dimensional space and compare its performance with that obtained by the 4-square tiling method of Linnartz, et al. [13].
机译:模糊提取器是一种强大但理论工具,可以从离散嘈杂数据中提取均匀字符串。在实践中可以使用之前,需要提前解决许多问题,例如使提取的字符串可再生和处理连续嘈杂数据。我们提出了一个原始的模糊Embedder作为模糊提取器的实用替代品。模糊Embedder自然支持可再生性,因为它允许嵌入随机选择的字符串。模糊Embedder将连续嘈杂的数据作为输入和其性能直接链接到输入数据的属性。我们基于量化指数调制(QIM)技术,为模糊嵌入器进行了一般的结构,并导出了与底层Qim相关的性能结果。此外,我们表明,从嵌入式串的长度的角度来看,二维空间中的量化是最佳的。我们还为二维空间中的模糊嵌入器提供了一种混凝土结构,并将其与由Linnartz等4平铺方法获得的性能进行比较。 [13]。

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