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k1 XOR DES_k2(m)

DES_k2(m XOR k1)

Why are not these "half versions of DES-X" more secure than regular DES? I mean, why can they be broken in the same time O(2^n) as breaking regular DES?

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uhh isn't 2^n basically a brute-force? –  JosephH Nov 5 '12 at 3:34
    
yes, I am asking why they are not stronger than DES itself. –  beetle Nov 5 '12 at 3:44

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