High Throughput Hardware Architecture of a MIMO-based Sea Land Segmentation for On-Orbit Remote Sensing Image Processing

Cunguang Zhang, Bo Li, Hongxu Jiang, Huiyong Li, Jiao Chen
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引用次数: 1

Abstract

Sea land segmentation is an essential part in remote sensing image processing, greatly reducing the interesting area. However, faced with the faster real-time processing of remote sensing images, the SLS algorithm's throughputs is always constrained by the self complexity and the on-chip resources. A new method based on MIMO for balancing resource and throughputs is proposed to segment the sea and land via edge detection. Firstly, according to the situation that the input and output data rate is not equal, the principle of MIMO is introduced to redesign the edge detection structure to double the bandwidth. Second, multi-port cache brings storage resources, which have to be reused, and reduce resource usage. Finally, the parallel sliding widdows method is adopted to usd in piplines of image outputing. The experimental results show that, compared with the state-of-art structure, this method performed better in hardware utilization and bandwidth.
基于mimo的在轨遥感影像海陆分割高吞吐量硬件架构
海陆分割是遥感图像处理的重要组成部分,可以大大减少感兴趣的区域。然而,面对更快的遥感图像实时处理,SLS算法的吞吐量总是受到自身复杂度和片上资源的限制。提出了一种基于MIMO的资源吞吐量平衡方法,通过边缘检测实现海陆分割。首先,针对输入输出数据速率不相等的情况,引入MIMO原理,重新设计边缘检测结构,使带宽翻倍;其次,多端口缓存带来了存储资源,这些存储资源必须被重用,减少了资源的使用。最后,采用平行滑动窗的方法对图像输出的流水线进行了划分。实验结果表明,与现有结构相比,该方法在硬件利用率和带宽方面具有更好的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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