Deep Learning-Based Cryptanalysis of a Simplified AES Cipher

Author:

Grari Hicham1ORCID,Zine-Dine Khalid2,Zine-Dine Khalid3,Azouaoui Ahmed1,Lamzabi Siham4

Affiliation:

1. Chouaib Doukkali University, Morocco

2. Faculty of Sciences, Mohammed V University in Rabat, El Jadida, El Jadida, Morocco

3. Faculty of Sciences, Mohammed V University in Rabat, Morocco

4. Laboratory of Innovation in Management and Engineering for Entreprise (LIMIE), ISGA Rabat, Morocco

Abstract

Recently, Deep Neural Networks have shown great deal of reliability and applicability as its applications spread in different areas. This paper proposes a cryptanalysis model based on Deep Neural Network, the neural network takes in plaintexts and their corresponding ciphertexts to predict the secret key of the cipher. We proposes two different approaches, in the first we use multi-layer perceptron (MLP). While in the second, the cryptanalysis problem is modeled as a multi-label classification problem, we introduce appropriate Deep Neural Network based methods for tackling such problem. We illustrate the effectiveness of the approach of the DNN-based cryptanalysis by attacking on Simplified AES block cipher. Therefore, specific metrics are readapted to the cryptanalysis context and used to evaluate the proposed schemes. The results indicate that treating cryptanalysis problem as multi-label classification is more suitable and can be a useful and promising tool for the cryptanalysis task.

Publisher

IGI Global

Subject

Information Systems

Reference23 articles.

1. Applying neural networks for simplified data encryption standard (SDES) cipher system cryptanalysis.;K. M.Alallayah;The International Arab Journal of Information Technology,2012

2. Neuro-cryptanalysis of DES. Proceedings of the World Congress on Internet Security;M. M.Alani;World,2012

3. Finding the differential characteristics of block ciphers with neural networks

4. Linear Cryptanalysis on Second Round Mini-AES;H. K.Bizaki;International Conference on Information and Communication Techmologies,2006

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