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Non-RAM-based architectural designs of wavelet-based digital systems based on novel nonlinear I/O data space transformations

机译:基于新型非线性I / O数据空间转换的基于小波的数字系统的非基于RAM的体系结构设计

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The designs of application specific integrated circuits and/or multiprocessor systems are usually required in order to improve the performance of multidimensional applications such as digital-image processing and computer vision. Wavelet-based algorithms have been found promising among these applications due to the features of hierarchical signal analysis and multiresolution analysis. Because of the large size of multidimensional input data, off-chip random access memory (RAM) based systems have ever been necessary for calculating algorithms in these applications, where either memory address pointers or data preprocessing and rearrangements in off-chip memories are employed. This paper establishes and follows novel concepts in data dependence analysis for generalized and arbitrarily multidimensional wavelet-based algorithms, i.e., the wavelet-adjacent field and the super wavelet-dependence vector. Based on them, a series of novel nonlinear I/O data space transformations for variable localization and dependence graph regularization for wavelet algorithms is proposed. It leads to general designs of non-RAM-based architectures for wavelet-based algorithms where off-chip communications for intermediate calculation results are eliminated without preprocessing or rearranging input data.
机译:通常需要专用集成电路和/或多处理器系统的设计,以提高多维应用程序的性能,例如数字图像处理和计算机视觉。由于分层信号分析和多分辨率分析的特点,在这些应用中发现基于小波的算法很有希望。由于多维输入数据的大小很大,因此在这些应用中,需要使用基于片外随机存取存储器(RAM)的系统来计算算法,其中采用了存储器地址指针或片外存储器中的数据预处理和重排。本文建立并遵循了基于数据的分析中基于广义和任意多维小波的算法的新概念,即小波相邻场和超小波相关向量。在此基础上,提出了一系列新颖的非线性I / O数据空间变换,用于小波算法的变量定位和依赖图正则化。它导致了基于小波算法的基于非RAM的体系结构的一般设计,其中消除了用于中间计算结果的片外通信,而无需预处理或重新排列输入数据。

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