AdaptiveISP: Learning an Adaptive Image Signal Processor for Object Detection
Yujin Wang, Tianyi Xu, Zhang Fan, Tianfan Xue, Jinwei Gu
摘要
Image Signal Processors (ISPs) convert raw sensor signals into digital images, which significantly influence the image quality and the performance of downstream computer vision tasks. Designing ISP pipeline and tuning ISP parameters are two key steps for building an imaging and vision system. To find optimal ISP configurations, recent works use deep neural networks as a proxy to search for ISP parameters or ISP pipelines. However, these methods are primarily designed to maximize the image quality, which are sub-optimal in the performance of high-level computer vision tasks such as detection, recognition, and tracking. Moreover, after training, the learned ISP pipelines are mostly fixed at the inference time, whose performance degrades in dynamic scenes. To jointly optimize ISP structures and parameters, we propose AdaptiveISP, a task-driven and scene-adaptive ISP. One key observation is that for the majority of input images, only a few processing modules are needed to improve the performance of downstream recognition tasks, and only a few inputs require more processing. Based on this, AdaptiveISP utilizes deep reinforcement learning to automatically generate an optimal ISP pipeline and the associated ISP parameters to maximize the detection performance. Experimental results show that AdaptiveISP not only surpasses the prior state-of-the-art methods for object detection but also dynamically manages the trade-off between detection performance and computational cost, especially suitable for scenes with large dynamic range variations. Project website: https://openimaginglab.github.io/AdaptiveISP/.
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引用它的顶会 Paper12
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- Dark-ISP: Enhancing RAW Image Processing for Low-Light Object DetectionJiasheng Guo, Xin Gao, Yuxiang Yan, Guanghao Li 等ICCV 2025 · 被引用 5 次
- Dr. RAW: Towards General High-Level Vision from RAW with Efficient Task ConditioningWenjun Huang, Ziteng Cui, Yinqiang Zheng, Yirui He 等NeurIPS 2025 · 被引用 5 次
- Beyond RGB: Adaptive Parallel Processing for RAW Object DetectionShani Gamrian, Hila Barel, Feiran Li, Masakazu Yoshimura 等ICCV 2025 · 被引用 4 次
- Task-Aware Image Signal Processor for Advanced Visual PerceptionKai Chen, Jin Xiao, Leheng Zhang, Kexuan Shi 等CVPR 2026 · 被引用 3 次
它引用的顶会 Paper11
- Image-Adaptive YOLO for Object Detection in Adverse Weather ConditionsWenyu Liu, Gaofeng Ren, Runsheng Yu, Shi Guo 等AAAI 2022 · 被引用 556 次
- Unpaired Image Enhancement Featuring Reinforcement-Learning-Controlled Image Editing SoftwareSatoshi Kosugi, Toshihiko YamasakiAAAI 2020 · 被引用 104 次
- ReconfigISP: Reconfigurable Camera Image Processing PipelineKe Yu, Zexian Li, Yue Peng, Chen Change Loy 等ICCV 2021 · 被引用 46 次
- DynamicISP: Dynamically Controlled Image Signal Processor for Image RecognitionMasakazu Yoshimura, Junji Otsuka, Atsushi Irie, Takeshi OhashiICCV 2023 · 被引用 28 次
- CycleISP: Real Image Restoration via Improved Data SynthesisSyed Waqas Zamir, Aditya Arora, Salman H. Khan, Munawar Hayat 等CVPR 2020
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