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In this paper, improved architectures are proposed for implementation of S-Box and inverse S-Box needed in the Advanced encryption standard (AES) algorithm. These use combinational logic only for implementing SubByte (S-box) and InvSubByte (Inverse S-box). The composite field arithmetic used for implementing S-Box in lower-order Galois field (GF) investigated by several authors recently is used as...
The AES algorithm published in 2001 is now the most popular symmetric encryption algorithm. Several implementations have beed proposed but few of them considered the hardware cost and the throughput as a whole. This paper presents an AES core to be capable of both encryption and decryption with three different key lengths: 128-, 192-, and 256-bit. The overall hardware cost was optimized by a very...
We propose a C-testable S-box implementation which is one of the most complex blocks in AES hardware implementation. Only 12 constant vectors are sufficient to achieve 100% fault coverage in the S-box. C-testability is achieved with an extra hardware overhead of 8.2 percent.
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