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Minimum-Bit-Error Rate Tuning for PDNP Detection

机译:PDNP检测的最小误码率调整

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摘要

A dominant impediment in magnetic recording is pattern-dependent media noise, and its impact will only grow more severe as areal densities increase. A widely used strategy for mitigating media noise in a trellis-based detector is pattern-dependent noise prediction (PDNP); in this approach, each bit pattern (which determines a trellis branch) will have its own set of branch metric parameters (including the signal levels, noise predictor coefficients, and residual variances). Because the number of states grows exponentially with the number of tracks being detected, a multitrack detector has far more parameters than a single-track detector. In this article, we propose the adaptive minimum-bit-error rate (AMBER) algorithm for adapting these pattern-dependent multitrack detector parameters with the aim of minimizing BER. Numerical results for a 2-D-PDNP multitrack detector based on a quasi-micromagnetic simulated channel show that, when compared to a conventional MMSE criterion, the AMBER algorithm decreases the BER by 17%.
机译:磁记录中的主导障碍是依赖于模式的介质噪声,其影响将在由于面密度的增加而变得更加严重。用于在基于格子的检测器中减轻媒体噪声的广泛使用的策略是模式相关的噪声预测(PDNP);在这种方法中,每个位模式(确定格子分支)将具有其自己的一组分支度量参数(包括信号电平,噪声预测器系数和残差差异)。因为状态的数量以被测轨道的数量呈指数级增长,所以多轨道检测器比单轨道检测器具有更多的参数。在本文中,我们提出了一种适应性最小位误差率(AMBER)算法,用于调整这些模式相关的多纹探测器参数,目的是最小化BER。基于准微磁性模拟通道的2-D-PDNP多点检测器的数值结果表明,与传统MMSE标准相比,琥珀色算法将BER减小17%。

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