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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

2024Year
5Citations
3Top-tier citations

Abstract

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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