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On Black-Box Complexity of Universally Composable Security in the CRS Model

机译:CRS模型中通用可组合安全性的黑匣子复杂性

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In this work, we study the intrinsic complexity of black-box Universally Composable (UC) secure computation based on general assumptions. We present a thorough study in various corruption modelings while focusing on achieving security in the common reference string (CRS) model. Our results involve the following: 1. Static UC Secure Computation. Designing the first static UC secure oblivious transfer protocol based on public-key encryption and stand-alone semi-honest oblivious transfer. As a corollary we obtain the first black-box constructions of UC secure computation assuming only two-round semi-honest oblivious transfer. 2. One-sided UC Secure Computation. Designing adaptive UC secure two-party computation with single corruptions assuming public-key encryption with oblivious ciphertext generation. 3. Adaptive UC Secure Computation. Designing adaptively secure UC commitment scheme assuming only public-key encryption with oblivious ciphertext generation. As a corollary we obtain the first black-box constructions of adaptive UC secure computation assuming only (trapdoor) simulatable public-key encryption (as well as a variety of concrete assumptions). We remark that such a result was not known even under non-black-box constructions.
机译:在这项工作中,我们基于一般假设研究黑盒通用可组合(UC)安全计算的内在复杂性。我们对各种损坏模型进行了全面的研究,同时着重于在公共参考字符串(CRS)模型中实现安全性。我们的结果涉及以下方面:1.静态UC安全计算。设计基于公钥加密和独立的半诚实遗忘转移的第一个静态UC安全遗忘转移协议。作为推论,我们假设仅进行两轮半诚实的遗忘转移,即可获得UC安全计算的第一个黑盒构造。 2.单面UC安全计算。设计自适应UC安全的两方计算时,假设公钥加密并带有隐含的密文生成,则具有单损坏的两方计算。 3.自适应UC安全计算。设计仅假定公钥加密且隐含密文生成的自适应安全UC承诺方案。作为推论,我们仅假设(活板门)可模拟的公钥加密(以及各种具体假设),就获得了自适应UC安全计算的第一个黑盒结构。我们指出,即使在非黑匣子结构下,这种结果也是未知的。

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