Visible to the public "Enhanced Cryptcoding: Joint Security and Advanced Dual-Step Quasi-Cyclic LDPC Coding"Conflict Detection Enabled

Title"Enhanced Cryptcoding: Joint Security and Advanced Dual-Step Quasi-Cyclic LDPC Coding"
Publication TypeConference Paper
Year of Publication2015
AuthorsE. Pisek, S. Abu-Surra, R. Taori, J. Dunham, D. Rajan
Conference Name2015 IEEE Global Communications Conference (GLOBECOM)
Date PublishedDec
PublisherIEEE
ISBN Number978-1-4799-5952-5
Accession Number 15820883
Keywordsadvanced encryption system, AES-128 security level, battery-life, channel coding, cloud computing, Complexity theory, cryptcoding, cryptography, cyclic codes, Data security, dual-step secure LDPC code for channel coding, encoding, Encryption, error statistics, FER, frame-error-rate, high throughput mobile device, joint security and advanced dual-step quasicyclic LDPC coding, joint security and advanced LDPC-based encryption, JSALC method, JSALE, low density parity check coding, parity check codes, PCM, Phase change materials, power-efficient design, pubcrawl170102, quasicyclic parity check matrix, SLCC, smartphone, tablet
Abstract

Data security has always been a major concern and a huge challenge for governments and individuals throughout the world since early times. Recent advances in technology, such as the introduction of cloud computing, make it even a bigger challenge to keep data secure. In parallel, high throughput mobile devices such as smartphones and tablets are designed to support these new technologies. The high throughput requires power-efficient designs to maintain the battery-life. In this paper, we propose a novel Joint Security and Advanced Low Density Parity Check (LDPC) Coding (JSALC) method. The JSALC is composed of two parts: the Joint Security and Advanced LDPC-based Encryption (JSALE) and the dual-step Secure LDPC code for Channel Coding (SLCC). The JSALE is obtained by interlacing Advanced Encryption System (AES)-like rounds and Quasi-Cyclic (QC)-LDPC rows into a single primitive. Both the JSALE code and the SLCC code share the same base quasi-cyclic parity check matrix (PCM) which retains the power efficiency compared to conventional systems. We show that the overall JSALC Frame-Error-Rate (FER) performance outperforms other cryptcoding methods by over 1.5 dB while maintaining the AES-128 security level. Moreover, the JSALC enables error resilience and has higher diffusion than AES-128.

URLhttp://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=7417284&isnumber=7416057
DOI10.1109/GLOCOM.2015.7417284
Citation Key7417284