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A Monte-Carlo Based Construction of Polarization-Adjusted Convolutional (PAC) Codes (2106.08118v1)

Published 15 Jun 2021 in cs.IT and math.IT

Abstract: This paper proposes a rate-profile construction method for polarization-adjusted convolutional (PAC) codes of any code length and rate, which is capable of maintaining trade-off between the error-correction performance and decoding complexity of PAC code. The proposed method can improve the error-correction performance of PAC codes while guaranteeing a low mean sequential decoding complexity for signal-to-noise ratio (SNR) values beyond a target SNR value.

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