Title :
An integrated signaling-encryption mechanism to reduce error propagation in wireless communications: performance analyses
Author :
Olama, Mohammed M. ; Matalgah, Mustafa M. ; Bobrek, Miljko
Author_Institution :
Comput. Sci. & Eng. Div., Oak Ridge Nat. Lab., Oak Ridge, TN, USA
Abstract :
Traditional encryption techniques require packet overhead, produce processing time delay, and suffer from severe quality of service deterioration due to fades and interference in wireless channels. These issues reduce the effective transmission data rate (throughput) considerably in wireless communications, where data rate with limited bandwidth is the main constraint. In this paper, performance evaluation analyses are conducted for an integrated signaling-encryption mechanism that is secure and enables improved throughput and probability of bit-error in wireless channels. This mechanism eliminates the drawbacks stated herein by encrypting only a small portion of an entire transmitted frame, while the rest is not subject to traditional encryption but goes through a signaling process (designed transformation) with the plaintext of the portion selected for encryption. We also propose to incorporate error correction coding solely on the small encrypted portion of the data to drastically improve the overall bit-error rate performance while not noticeably increasing the required bit-rate. We focus on validating the signaling-encryption mechanism utilizing Hamming and convolutional error correction coding by conducting an end-to-end system-level simulation-based study. The average probability of bit-error and throughput of the encryption mechanism are evaluated over standard Gaussian and Rayleigh fading-type channels and compared to the ones of the conventional advanced encryption standard (AES).
Keywords :
Rayleigh channels; cryptography; error correction codes; error statistics; fading channels; quality of service; radio networks; telecommunication security; AES; Gaussian fading-type channels; Hamming coding; Rayleigh fading-type channels; advanced encryption standard; bit-error probability; bit-error rate performance; convolutional error correction coding; encryption techniques; incorporate error correction; integrated signaling encryption mechanism; quality of service; reduce error propagation; signaling encryption mechanism; time delay processing; transmission data rate; wireless channel interference; wireless channels; wireless communications; Bit error rate; Encoding; Encryption; Error correction codes; Throughput; Wireless communication; Monte Carlo simulations; Rayleigh fading; advanced encryption standard (AES); bit-error rate; cryptography; error correction coding; quality of service (QoS); throughput;
Conference_Titel :
Communications Quality and Reliability (CQR), 2015 IEEE International Workshop Technical Committee on
Conference_Location :
Charleston, SC
DOI :
10.1109/CQR.2015.7129081