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Indistinguishability Obfuscation from Compact Functional Encryption

机译:难以区分的功能从紧凑的功能加密中的混淆

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The arrival of indistinguishability obfuscation (iO) has transformed the cryptographic landscape by enabling several security goals that were previously beyond our reach. Consequently, one of the pressing goals currently is to construct iO from well-studied standard cryptographic assumptions. In this work, we make progress in this direction by presenting a reduction from iO to a natural form of public-key functional encryption (FE). Specifically, we construct iO for general functions from any single-key FE scheme for NC~1 that achieves selective, indistinguishability security against sub-exponential time adversaries. Further, the FE scheme should be compact, namely, the running time of the encryption algorithm must only be a polynomial in the security parameter and the input message length (and not in the function description size or its output length). We achieve this result by developing a novel arity amplification technique to transform FE for single-ary functions into FE for multi-ary functions (aka multi-input FE). Instantiating our approach with known, non-compact FE schemes, we obtain the first constructions of multi-input FE for constant-ary functions based on standard assumptions. Finally, as a result of independent interest, we construct a compact FE scheme from randomized encodings for Turing machines and learning with errors assumption.
机译:无法区分的难以置信的到达(IO)通过启用以前超出我们的覆盖范围的一些安全目标来改变了加密横向。因此,目前的一个按压目标是从学习的标准密码假设构建IO。在这项工作中,我们通过将IO减少到公共关键功能加密(FE)的自然形式,我们在这方面取得进展。具体而言,我们构建了来自任何单键FE方案的一般功能,为NC〜1实现了针对子指数时间对手的选择性,无法区分的安全性。此外,FE方案应该是紧凑的,即,加密算法的运行时间必须仅在安全参数和输入消息长度(而不是功能描述大小或其输出长度)中的多项式。通过开发新颖的ARINITY放大技术来实现这一结果,以将单颗函数转换为多ary函数的FE转换为FE(AKA多输入FE)。实例化了我们已知的非紧凑型Fe方案的方法,我们基于标准假设获得了多输入Fe的多输入Fe的第一个结构。最后,由于独立兴趣,我们构建了一个紧凑的FE方案,从随机编码进行了用于图灵机和学习的错误假设。

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