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DAC2024顶会

Auto-ISP: An Efficient Real-Time Automatic Hyperparameter Optimization Framework for ISP Hardware System

Jiaming Liu, Zihao Liu, Xuan Huang, Ruoxi Zhu, Qi Zheng, Zhijian Hao, Tao Liu, Jun Tao, Yibo Fan

2024年份
5被引次数
3顶会引用

摘要

Image Signal Processor (ISP) is widely used in intelligent edge devices across various scenarios. The intricate and time-consuming tuning process demands substantial expertise. Current AI-based auto-tuning operates discretely offline, relying on predefined scenes with human intervention, leading to inconvenient manipulation, with potentially fatal impacts on downstream tasks in unforeseen scenes. We propose a real-time automatic hyperparameter optimization ISP hardware system to address real-world scenarios. Our design features a tri-step framework and a hardware accelerator, demonstrating superior performance in human and computer vision tasks, even in real-time unforeseen scenes. Experiments showcase its practicality, achieving 1080P@75FPS/240FPS in FPGA/ASIC, respectively.

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