Published July 2006 | Version Published
Book Section - Chapter Open

Oblivious channels

  • 1. ROR icon California Institute of Technology

Abstract

Let C = {x_1,...,x_N} ⊂ {0, 1}^n be an [n, N] binary error correcting code (not necessarily linear). Let e ∈ {0, 1}^n be an error vector. A codeword X ∈ C is said to be disturbed by the error e if the closest codeword to X ⴲ e is no longer x. Let A_e be the subset of codewords in C that are disturbed by e. In this work we study the size of A_e in random codes C (i.e. codes in which each codeword x_i is chosen uniformly and independently at random from {0, 1}^n). Using recent results of Vu [random structures and algorithms 20(3)] on the concentration of non-Lipschitz functions, we show that |A_e| is strongly concentrated for a wide range of values of N and ‖e‖. We apply this result in the study of communication channels we refer to as oblivious. Roughly speaking, a channel W(y|x) is said to be oblivious if the error distribution imposed by the channel is independent of the transmitted codeword x. For example, the well studied binary symmetric channel is an oblivious channel. In this work, we define oblivious and partially oblivious channels and present lower bounds on their capacity. The oblivious channels we define have connections to arbitrarily varying channels with state constraints.

Additional Information

© 2006 IEEE. I would like to thank Sidharth Jaggi for several helpful discussions and comments on the oblivious channel model. Research supported in part by NSF grant CCF-0346991.

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Identifiers

Eprint ID
77321
Resolver ID
CaltechAUTHORS:20170509-171630900

Funding

NSF
CCF-0346991

Dates

Created
2017-05-16
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Updated
2021-11-15
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