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Improved Differential Fault Analysis on AES Key Schedule

机译:AES密钥计划的改进的差分故障分析

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Differential fault analysis (DFA) finds the key of a block cipher using differential information between correct and faulty ciphertexts obtained by inducing faults during the computation of ciphertexts. Among many ciphers, advanced encryption standard (AES) has been the main target of DFA due to its popularity. The naive implementation of AES is known to be vulnerable to DFA, which can be split into two categories depending on the fault location: the DFA on the State and the DFA on the Key Schedule. For the first category, much research has been done and very efficient methods were devised. However, there is still a lack of research in the second category. The advantage of DFA on the Key Schedule is that it can even defeat some fault-protected AES implementations. Research on DFA has been diversified into several directions: reducing the number of required faults, changing fault models (from one-byte fault to multibyte fault and vise versa), extending to AES-192 and AES-256, and exploiting faults induced at an earlier round. This paper deals with all these directions together in DFA on AES Key Schedule. We introduce new attacks that find the AES-128 key with two faults in a one-byte fault model without exhaustive search and the AES-192 and the AES-256 keys with six and four faults, respectively.
机译:差分故障分析(DFA)使用正确和错误密文之间的差分信息来找到分组密码的密钥,该正确和错误密文是通过在密文计算过程中诱发错误而获得的。在许多密码中,高级加密标准(AES)由于其受欢迎程度已成为DFA的主要目标。众所周知,AES的简单实施容易受到DFA的攻击,根据故障位置的不同,可以将其分为两类:州的DFA和关键时间表的DFA。对于第一类,已经进行了大量研究,并且设计了非常有效的方法。但是,第二类仍然缺乏研究。 DFA在“关键时间表”上的优势在于,它甚至可以破坏某些受故障保护的AES实现。 DFA的研究已向多个方向扩展:减少所需的故障数量,更改故障模型(从一字节故障更改为多字节故障,反之亦然),扩展到AES-192和AES-256,以及利用在前一轮。本文在AES密钥时间表上的DFA中一起处理了所有这些指示。我们引入了新的攻击方法,即在不进行详尽搜索的情况下在一个字节的故障模型中找到具有两个故障的AES-128密钥,以及分别具有六个和四个故障的AES-192和AES-256密钥。

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