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VLSI architecture of lossless ECG compression design based on fuzzy decision and optimisation method for wearable devices

机译:基于模糊决策和可穿戴设备优化方法的无损心电压缩设计VLSI架构

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摘要

A hardware-oriented lossless electrocardiogram compression algorithm is presented for very large-scale integration (VLSI) circuit design. To achieve high performance and low complexity, a novel prediction method based on the fuzzy decision and particle swarm optimiser (PSO) was developed. The accuracy of prediction was advanced efficiently by using the PSO algorithm to find the optimal parameters, which provided 64 situations for the fuzzy decision. Moreover, a novel low-complexity and high-performance entropy-coding algorithm based on Huffman coding was developed, which used one limited Huffman coding to encode a main region and five-region codes to encode the extending regions. The average compression rate of the whole MIT-BIH Arrhythmia database was up to 2.84 by combing the proposed fuzzy-based PSO prediction and Huffman region entropy-coding techniques. The VLSI architecture contained only a 1.9 K gate count and its core area was 5965 μm synthesised using a 90 nm CMOS process. It consumed 201 μW when operating at a 200 MHz processing rate. Compared with previous low-complexity designs, the average compression rate is not only improved by more than 6.4% but also reduced the gate count by at least 8.2%.
机译:提出了一种面向硬件的无损心电图压缩算法,用于超大规模集成(VLSI)电路设计。为了实现高性能和低复杂度,提出了一种基于模糊决策和粒子群优化算法(PSO)的预测方法。利用PSO算法寻找最优参数,有效地提高了预测的准确性,为模糊决策提供了64种情况。此外,还开发了一种基于霍夫曼编码的低复杂度,高性能的熵编码算法,该算法使用一个有限的霍夫曼编码对主要区域进行编码,并使用五区域编码对扩展区域进行编码。结合提出的基于模糊的PSO预测和霍夫曼区域熵编码技术,整个MIT-BIH心律失常数据库的平均压缩率高达2.84。 VLSI架构仅包含1.9 K的门数,其核心面积为9065 CMOS工艺合成的5965μm。当以200 MHz的处理速率运行时,它的功耗为201μW。与以前的低复杂度设计相比,平均压缩率不仅提高了6.4%以上,而且门数减少了至少8.2%。

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