Title :
Robust secret key capacity for the MIMO induced source model
Author_Institution :
Univ. of Cantabria, Santander, Spain
Abstract :
This paper considers the problem of distilling a secret key in a Gaussian multiple-input multiple-output (MIMO) scenario with two legitimate nodes and an eavesdropper. Focusing on the realistic case without perfect knowledge of the eavesdropper channel, and following a conservative practical approach based on the maximization of the worst case secret key capacity (SKC), the problem of designing the optimal transmit covariance matrix is reformulated as a convex optimization problem. In the limiting case in which the eavesdropper channel can not be estimated, or when the estimate is highly unreliable, the optimal covariance matrix can be obtained by means of waterfilling or matched filtering like algorithms. Additionally, we illustrate the benefits of allowing time sharing between transmissions of the two legitimate nodes, and provide an efficient algorithm for obtaining the optimal transmit covariance matrices and time-sharing factor.
Keywords :
Gaussian channels; MIMO communication; covariance matrices; optimisation; private key cryptography; Gaussian multiple-input multiple-output scenario; MIMO induced source model; convex optimization problem; eavesdropper channel; legitimate node transmission; matched filtering algorithm; optimal transmit covariance matrix; robust secret key capacity; time sharing; waterfilling algorithm; worst case SKC maximization; Channel estimation; Covariance matrices; MIMO; Niobium; Robustness; Uncertainty; Wireless communication; Induced Source Model; Multiple-Input Multiple-Output (MIMO); Robust Design; S-Procedure; Secret Key Capacity (SKC); Time-Sharing;
Conference_Titel :
Acoustics, Speech and Signal Processing (ICASSP), 2014 IEEE International Conference on
Conference_Location :
Florence
DOI :
10.1109/ICASSP.2014.6855195