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Bit-Level Multiplierless FIR Filter Optimization Incorporating Sparse Filter Technique

机译:结合稀疏滤波器技术的位级无乘法器FIR滤波器优化

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Multiplierless FIR filter optimization has been extensively studied in the past decades to minimize the number of adders. A more accurate measurement of the implementation complexity is the number of full adders counted at bit-level. However, the high computational complexity of the optimization at bit-level hinders the technique from practical applications. In this paper, the sparse filter technique is exploited and makes the search space at bit-level significantly reduced. Thus, the bit-level optimization of multiplierless FIR filters for the first time becomes possible. When the sparse filter technique is employed for the multiplierless filter design, the sparsity of the filter is properly controlled so that the feasibility of the bit-level optimization in discrete space is maintained. Thereafter, in the reduced search space, a tree search algorithm is formulated at bit-level, and techniques to estimate the bit level hardware cost and to accelerate the search are presented. Design examples show that the proposed bit-level optimization method generates designs with lower hardware cost and power consumption than that of the best word-level optimization methods, while the design time is still at an acceptable level. The average power savings to 3 recent published techniques are 13.6%, 8.0% and 26.1%, respectively.
机译:在过去的几十年中,对无乘法器FIR滤波器优化进行了广泛的研究,以最大程度地减少加法器的数量。实现复杂度的更准确度量是按位级别计算的全加器数量。但是,位级优化的高计算复杂性阻碍了该技术的实际应用。本文采用了稀疏滤波技术,使得比特级的搜索空间大大减少。因此,首次实现无乘法器FIR滤波器的位级优化成为可能。当将稀疏滤波器技术用于无乘法器设计时,可以适当控制滤波器的稀疏性,从而保持离散空间中位级优化的可行性。此后,在缩小的搜索空间中,在位级别制定了树搜索算法,并提出了估算位级别硬件成本并加快搜索速度的技术。设计实例表明,与最佳字级优化方法相比,所提出的位级优化方法生成的硬件成本和功耗更低,而设计时间仍处于可接受的水平。三种最新发布的技术的平均节能量分别为13.6%,8.0%和26.1%。

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