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Performance estimation for maximum-likelihood detection for channels with transition noise

机译:具有过渡噪声的信道的最大似然检测性能估计

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摘要

Transition noise is known to be a major cause of errors for high density magnetic recording. This noise is signal dependent and can be modeled as multiplicative noise in a linear channel model. A maximum-likelihood algorithm was considered for detection of signals in such noise. In this work, the performance of the detector, based on this algorithm, is compared to the traditional Viterbi algorithm (VA) and a modified Viterbi algorithm (MVA) by computer simulations. Results show an improvement of up to 5 dB In signal-to-noise-ratio (SNR) under typical conditions with a reasonable complexity.
机译:众所周知,过渡噪声是导致高密度磁记录错误的主要原因。该噪声取决于信号,可以在线性通道模型中建模为乘法噪声。考虑了最大似然算法来检测这种噪声中的信号。在这项工作中,通过计算机模拟将基于该算法的检测器性能与传统的维特比算法(VA)和改进的维特比算法(MVA)进行了比较。结果表明,在典型条件下,具有合理的复杂度,信噪比(SNR)最高可提高5 dB。

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