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Bio-inspired FPGA architecture for self-calibration of an image compression core based on wavelet transforms in embedded systems

机译:基于嵌入式系统中的小波变换的基于小波变换的图像压缩核心自校准的生物启发FPGA架构

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摘要

A generic bio-inspired adaptive architecture for image compression suitable to be implemented in embedded systems is presented. The architecture allows the system to be tuned during its calibration phase. An evolutionary algorithm is responsible of making the system evolve towards the required performance. A prototype has been implemented in a Xilinx Virtex-5 FPGA featuring an adaptive wavelet transform core directed at improving image compression for specific types of images. An Evolution Strategy has been chosen as the search algorithm and its typical genetic operators adapted to allow for a hardware friendly implementation. HW/SW partitioning issues are also considered after a high level description of the algorithm is profiled which validates the proposed resource allocation in the device fabric. To check the robustness of the system and its adaptation capabilities, different types of images have been selected as validation patterns. A direct application of such a system is its deployment in an unknown environment during design time, letting the calibration phase adjust the system parameters so that it performs efcient image compression. Also, this prototype implementation may serve as an accelerator for the automatic design of evolved transform coefficients which are later on synthesized and implemented in a non-adaptive system in the final implementation device, whether it is a HW or SW based computing device. The architecture has been built in a modular way so that it can be easily extended to adapt other types of image processing cores. Details on this pluggable component point of view are also given in the paper.
机译:提出了适用于嵌入式系统的通用生物启发式自适应图像压缩体系结构。该体系结构允许在校准阶段对系统进行调整。进化算法负责使系统朝所需性能发展。 Xilinx Virtex-5 FPGA中实现了一个原型,该原型具有自适应小波变换核心,旨在针对特定类型的图像改善图像压缩。选择了一种进化策略作为搜索算法,并将其典型的遗传算子进行了调整,以实现硬件友好的实现。在对算法的高级描述进行了概要分析之后,还可以考虑硬件/软件分区问题,这可以验证设备结构中建议的资源分配。为了检查系统的鲁棒性及其适应能力,已选择不同类型的图像作为验证模式。这种系统的直接应用是在设计期间将其部署在未知环境中,让校准阶段调整系统参数,以便其执行有效的图像压缩。而且,该原型实施方式可以用作用于自动设计演进的变换系数的加速器,其随后在最终的实施装置(无论是基于HW还是SW的计算装置)中的非自适应系统中合成并实施。该体系结构以模块化方式构建,因此可以轻松扩展以适应其他类型的图像处理核心。本文还提供了有关可插拔组件观点的详细信息。

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