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首页> 外文期刊>IEEE Transactions on Computers >Self-Reconfigurable Evolvable Hardware System for Adaptive Image Processing
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Self-Reconfigurable Evolvable Hardware System for Adaptive Image Processing

机译:用于自适应图像处理的可自我重构的可演化硬件系统

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摘要

This paper presents an evolvable hardware system, fully contained in an FPGA, which is capable of autonomously generating digital processing circuits, implemented on an array of processing elements (PEs). Candidate circuits are generated by an embedded evolutionary algorithm and implemented by means of dynamic partial reconfiguration, enabling evaluation in the final hardware. The PE array follows a systolic approach, and PEs do not contain extra logic such as path multiplexers or unused logic, so array performance is high. Hardware evaluation in the target device and the fast reconfiguration engine used yield smaller reconfiguration than evaluation times. This means that the complete evaluation cycle is faster than software-based approaches and previous evolvable digital systems. The selected application is digital image filtering and edge detection. The evolved filters yield better quality than classic linear and nonlinear filters using mean absolute error as standard comparison metric. Results do not only show better circuit adaptation to different noise types and intensities, but also a nondegrading filtering behavior. This means they may be run iteratively to enhance filtering quality. These properties are even kept for high noise levels (40 percent). The system as a whole is a step toward fully autonomous, adaptive systems.
机译:本文提出了一种可演进的硬件系统,该系统完全包含在FPGA中,该系统能够自主生成在一系列处理元件(PE)上实现的数字处理电路。候选电路由嵌入式进化算法生成,并通过动态部分重新配置实现,从而可以在最终硬件中进行评估。 PE阵列采用收缩方式,并且PE不包含额外的逻辑(例如路径多路复用器或未使用的逻辑),因此阵列性能很高。目标设备和使用的快速重新配置引擎中的硬件评估所产生的重新配置比评估时间要小。这意味着完整的评估周期比基于软件的方法和以前的可演进数字系统要快。所选的应用是数字图像过滤和边缘检测。与使用平均绝对误差作为标准比较指标的线性和非线性滤波器相比,经过改进的滤波器产生的质量更高。结果不仅显示出对不同噪声类型和强度的更好的电路适应性,而且还显示了无劣化的滤波性能。这意味着它们可以迭代运行以提高过滤质量。这些特性甚至可以保持较高的噪声水平(40%)。整个系统是朝着完全自主的自适应系统迈出的一步。

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