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Stochastic circuit design and performance evaluation of vector quantization

机译:随机电路设计与矢量量化的性能评估

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Vector quantization (VQ) is a general data compression technique that has a scalable implementation complexity and potentially a high compression ratio. In this paper, a novel implementation of VQ using stochastic circuits is proposed and its performance is evaluated. The stochastic and binary designs are compared for the same compression quality and the circuits are synthesized for an industrial 28-nm cell library. The effects of varying the sequence length of the stochastic design are studied with respect to the performance metric of throughput per area (TPA). When a shortened 512-bit encoding sequence is used to obtain a lower quality compression, the TPA is about 2.60 times that of the binary implementation with the same quality as that of the stochastic implementation measured by the L norm error (i.e., the first-order error). Thus, the stochastic implementation outperforms the conventional binary design in terms of TPA for a relatively low compression quality. By exploiting the progressive precision feature of a stochastic circuit, a readily scalable processing quality can be attained by simply halting the computation after different numbers of clock cycles.
机译:矢量量化(VQ)是一种通用数据压缩技术,具有可扩展的实现复杂性和潜在的高压缩比。本文提出了使用随机电路的新颖实现,并评估其性能。将随机和二进制设计进行比较,以相同的压缩质量,并且对工业28-NM细胞库合成电路。关于各个区域(TPA)的吞吐量的性能度量,研究了随机设计的序列长度的效果。当使用缩短的512位编码序列来获得较低质量的压缩时,TPA的二进制实现是大约2.60倍,其质量与由L常态误差测量的随机实现相同的质量(即,第一订单错误)。因此,随机实施以相对低的压缩质量而言,在TPA方面优于传统的二元设计。通过利用随机电路的渐进精度特征,通过在不同数量的时钟周期之后停止计算,可以实现易于缩放的处理质量。

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