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Medium consumption in holographic memories

机译:全息记忆中的中等消耗

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The dynamic range of holographic storage media is traditionally characterized in terms of M/#. However, this is a system parameter that assumes simple, uniform plane-wave holograms. Realistic architectures violate this assumption so that M/# measured with plane waves cannot be used to predict system diffraction efficiency. Thus, there currently is no systematic method predicting signal strength and medium consumption for holographic storage architectures a priori. We define a new material parameter, the modulation integral, M_(I), and show how this may be used for dynamic range budgeting and diffraction efficiency prediction in complex storage systems. The method is illustrated by applying it to two architectures, collinear and angle polytopic, in order to estimate the M/# required for achieving a target storage density in the presence of empirical optical scatter noise.
机译:全息存储介质的动态范围传统上以M /#为特征。但是,这是假设简单,均匀的平面波全息图的系统参数。现实的架构违反了这一假设,因此用平面波测量的M /#不能用于预测系统衍射效率。因此,当前没有先验地预测全息存储架构的信号强度和介质消耗的系统方法。我们定义了一个新的材料参数,调制积分M_(I),并展示了如何将其用于复杂存储系统中的动态范围预算和衍射效率预测。通过将其应用于共线和多角形两种体系结构来说明该方法,以便在存在经验性光散射噪声的情况下估算实现目标存储密度所需的M /#。

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