Replies: 3 comments 6 replies
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这个版本的编排好多了,感谢! |
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Hi @creed-sd 对于“My question is how to generate all (M1, C1, M2, C2)?”,你有解吗? |
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看上去可以选不同的单位根,得到另一组解,我没有试过 :) |
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sm4ni里用到的这组: 不知道怎么算出来的。 |
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经过测试,在AES/SM4采用同样的算法及参数的情况下,无论使用多项式基还是使用正规基,无论GF(2^4) Nu = Cz + D,C/D采用论文A very compact Rijndael S-box中的何种组合,得到的{M1, C1, M2, C2}结果一样。 |
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那可能还是得考虑别的思路,我当时主要是为了推塔域实现,然后顺带想到的可以这样推导下,看起来这个不是正路 |
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你的推导没有问题,不能说不是正路。我给mjosaarinen发了邮件,看看能否得到回复。 |
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其实主要是M1和M2的关系,从复合域推导出来的,M1和M2存在如下关系: 但mjosaarionen的那一组不存在上述关系,或许存在其他未知确定性关系。C1和M1, C2和M2的关系是确定的,一致的: |
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没能收到mjosaarinen的回复。 |
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我的博客地址在这:)
http://zongyue.top:8090/archives/aes%E5%92%8Csm4s%E7%9B%92%E5%A4%8D%E5%90%88%E5%9F%9F%E5%AE%9E%E7%8E%B0%E6%96%B9%E6%B3%95
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