VLSI implementation of spatial prediction based image compression scheme

A. Nandi, L. Patnaik, R. Banakar
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Abstract

We propose the design and implementation of hardware architecture for spatial prediction based image compression scheme, which consists of prediction phase and quantization phase. In prediction phase, the hierarchical tree structure obtained from the test image is used to predict every central pixel of an image by its four neighboring pixels. The prediction scheme generates an error image, to which the wavelet/sub-band coding algorithm can be applied to obtain efficient compression. The software model is tested for its performance in terms of entropy, standard deviation. The memory and silicon area constraints play a vital role in the realization of the hardware for hand-held devices. The hardware architecture is constructed for the proposed scheme, which involves the aspects of parallelism in instructions and data. The processor consists of pipelined functional units to obtain the maximum throughput and higher speed of operation. The hardware model is analyzed for performance in terms throughput, speed and power. The results of hardware model indicate that the proposed architecture is suitable for power constrained implementations with higher data rate
VLSI实现基于空间预测的图像压缩方案
提出了一种基于空间预测的图像压缩方案的硬件结构设计与实现,该方案分为预测阶段和量化阶段。在预测阶段,利用从测试图像中获得的分层树结构,通过图像的四个相邻像素来预测图像的每个中心像素。该预测方案生成一幅误差图像,利用小波/子带编码算法对误差图像进行有效压缩。从熵、标准差等方面对软件模型的性能进行了检验。存储器和硅面积的限制在手持设备硬件的实现中起着至关重要的作用。构建了该方案的硬件体系结构,包括指令并行性和数据并行性。该处理器由流水线功能单元组成,以获得最大的吞吐量和更高的操作速度。从吞吐量、速度和功耗等方面分析了硬件模型的性能。硬件模型结果表明,该架构适用于功率受限、数据速率较高的实现
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