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Adaptive Decomposition of Noise Sources in Digital Recording Systems With Media Noise

机译:具有媒体噪声的数字记录系统中噪声源的自适应分解

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摘要

In digital recording systems, the total amount of data-dependent media noise increases considerably as recording densities increase. A proper noise characterization is crucial for the design of receivers for high-density storage systems. This characterization involves the selection of a proper noise model and subsequently the accurate estimation of the parameters of the selected model. The estimation algorithm proposed in this paper jointly estimates the parameters of both media and additive noise with a high accuracy. The proposed algorithm makes use of the data dependency of the media noise to distinguish between the different noise sources. The algorithm is simple and as a result can be implemented in recording systems, with only a limited amount of complexity, as an easy "add-on" to read-channel ICs. From the simulation results and the analytical derivation of the estimation algorithm, we can clearly indicate which data patterns yield near-optimal estimation performance. These patterns are the ideal test patterns in experimental systems. We propose and discuss test patterns for magnetic and optical storage systems
机译:在数字记录系统中,随着记录密度的增加,与数据相关的媒体噪声的总量会大大增加。适当的噪声表征对于高密度存储系统的接收机设计至关重要。这种表征包括选择合适的噪声模型,然后准确估计所选模型的参数。本文提出的估计算法可以高精度地共同估计介质和附加噪声的参数。所提出的算法利用媒体噪声的数据依赖性来区分不同的噪声源。该算法很简单,因此可以在记录系统中实现,并且只有有限的复杂度,这是对读取通道IC的简单“附加”。从仿真结果和估计算法的解析推导,我们可以清楚地表明哪些数据模式产生了接近最佳的估计性能。这些模式是实验系统中理想的测试模式。我们提出并讨论磁和光存储系统的测试模式

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