IELAS: An ELAS-Based Energy-Efficient Accelerator for Real-Time Stereo Matching on FPGA Platform

Tian Gao, Zishen Wan, Yuyang Zhang, Bo Yu, Yanjun Zhang, Shaoshan Liu, Arijit Raychowdhury

科研成果: 书/报告/会议事项章节会议稿件同行评审

14 引用 (Scopus)

摘要

Stereo matching is a critical task for robot navigation and autonomous vehicles, providing the depth estimation of surroundings. Among all stereo matching algorithms, Efficient Large-scale Stereo (ELAS) offers one of the best tradeoffs between efficiency and accuracy. However, due to the inherent iterative process and unpredictable memory access pattern, ELAS can only run at 1.5-3 fps on high-end CPUs and difficult to achieve real-Time performance on low-power platforms. In this paper, we propose an energy-efficient architecture for real-Time ELAS-based stereo matching on FPGA platform. Moreover, the original computational-intensive and irregular triangulation module is reformed in a regular manner with points interpolation, which is much more hardware-friendly. optimizations, including memory management, parallelism, and pipelining, are further utilized to reduce memory footprint and improve throughput. Compared with Intel i7 CPU and the state-of-The-Art \mathrm{C}\mathrm{P}\mathrm{U}+FPGA implementation, our FPGA realization achieves up to 38.4\times and 3.32\times frame rate improvement, and up to 27.1\times and 1.13\times energy efficiency improvement, respectively.

源语言英语
主期刊名2021 IEEE 3rd International Conference on Artificial Intelligence Circuits and Systems, AICAS 2021
出版商Institute of Electrical and Electronics Engineers Inc.
ISBN(电子版)9781665419130
DOI
出版状态已出版 - 6 6月 2021
已对外发布
活动3rd IEEE International Conference on Artificial Intelligence Circuits and Systems, AICAS 2021 - Washington, 美国
期限: 6 6月 20219 6月 2021

出版系列

姓名2021 IEEE 3rd International Conference on Artificial Intelligence Circuits and Systems, AICAS 2021

会议

会议3rd IEEE International Conference on Artificial Intelligence Circuits and Systems, AICAS 2021
国家/地区美国
Washington
时期6/06/219/06/21

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