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Double precision nonlinear cell for fast independent component analysis algorithm

机译:快速独立分量分析算法双精度非线性电池

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Several advanced algorithms in defense and security objectives require high-speed computation of nonlinear functions. These include detection, localization, and identification. Increasingly, such computations must be performed in double precision accuracy in real time. In this paper, we develop a significance-based interpolative approach to such evaluations for double precision arguments. It is shown that our approach requires only one major multiplication, which leads to a unified and fast, two-cycle, VLSI architecture for mantissa computations. In contrast, the traditional iterative computations require several cycles to converge and typically these computations vary a lot from one function to another. Moreover, when the evaluation pertains to a compound or concatenated function, the overall time required becomes the sum of the times required by the individual operations. For our approach, the time required remains two cycles even for such compound or concatenated functions. Very importantly, the paper develops a key formula for predicting and bounding the worst case arithmetic error. This new result enables the designer to quickly select the architectural parameters without the expensive and intolerably long simulations, while guaranteeing the desired accuracy. The specific application focus is the mapping of the Independent Component Analysis (ICA) technique to a coarse-grain parallel-processing architecture.
机译:防御和安全目标中的几种高级算法需要高速计算非线性功能。这些包括检测,本地化和识别。越来越多地,这种计算必须实时以双重精度精度执行。在本文中,我们为双重精确参数的这种评估制定了基于意义的内插方法。结果表明,我们的方法只需要一个主要的乘法,这导致了统一和快速,双周期的VLSI架构,用于尾数计算。相反,传统的迭代计算需要若干周期来汇聚,并且通常这些计算从一个功能到另一个功能都会变化很多。此外,当评估涉及化合物或级联函数时,所需的总时间成为各个操作所需的时间的总和。对于我们的方法,即使对于这种化合物或连接功能,所需时间仍然是两个循环。非常重要的是,本文开发了用于预测和限定最坏情况算术误差的关键公式。这种新结果使设计人员能够在没有昂贵且不宽度的长模拟的情况下快速选择架构参数,同时保证所需的精度。具体应用重点是将独立分量分析(ICA)技术映射到粗晶并行处理架构。

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