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Signal processing for two dimensional magnetic recording using Voronoi model averaged statistics

机译:使用Voronoi模型平均统计量对二维磁记录进行信号处理

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This paper considers a signal processing system for two-dimensional magnetic recording (TDMR) employing a random Voronoi grain model. The channel model also includes two-dimensional intersymbol interference (2D-ISI) and additive white Gaussian noise. The system uses a 2D-ISI BCJR detector and irregular repeat-accumulate (IRA) code decoder in a turbo-equalization approach. In order to transfer soft information to the IRA decoder a mapping function based on the 2D-ISI detector soft information statistics is used. Simulations employing the perturbed-bit-centers Voronoi grain model proposed in a previous paper by Hwang et al. show that the proposed system achieves a 6.5% increase in user bits/grain (U/G) and an 11.7 dB SNR gain compared to Hwang et al. Simulation results also indicate that our random Voronoi model is harder to equalize than the Hwang Voronoi model. For the random Voronoi model considered in this paper, the proposed system achieves a density of 0.4422 U/G, corresponding to an areal density of about 8.8 Terabits/in on typical magnetic hard disks; this is nearly an order of magnitude better than the best commercially available systems.
机译:本文考虑采用随机Voronoi颗粒模型的二维磁记录(TDMR)信号处理系统。信道模型还包括二维符号间干扰(2D-ISI)和加性高斯白噪声。该系统以Turbo均衡方法使用2D-ISI BCJR检测器和不规则重复累积(IRA)码解码器。为了将软信息传送到IRA解码器,使用基于2D-ISI检测器软信息统计的映射功能。 Hwang等人在先前的论文中提出了利用摄动位中心Voronoi晶粒模型进行的仿真。结果表明,与Hwang等人相比,该系统的用户比特/粒度(U / G)提高了6.5%,SNR增益提高了11.7 dB。仿真结果还表明,我们的随机Voronoi模型比Hwang Voronoi模型更难均衡。对于本文中考虑的随机Voronoi模型,所提出的系统实现了0.4422 U / G的密度,相当于典型磁硬盘上的大约8.8 Terabits / in的面密度。这比最好的市售系统要好将近一个数量级。

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