CAMO: Correlation-Aware Mask Optimization with Modulated Reinforcement Learning
Xiaoxiao Liang, Haoyu Yang, Kang Liu, Bei Yu, Yuzhe Ma
Abstract
Optical proximity correction (OPC) is a vital step to ensure print-ability in modern VLSI manufacturing. Various OPC approaches based on machine learning have been proposed to pursue performance and efficiency, which are typically data-driven and hardly involve any particular considerations of the OPC problem, leading to potential performance or efficiency bottlenecks. In this paper, we propose CAMO, a reinforcement learning-based OPC system that specifically integrates important principles of the OPC problem. CAMO explicitly involves the spatial correlation among the movements of neighboring segments and an OPC-inspired modulation for movement action selection. Experiments are conducted on both via layer patterns and metal layer patterns. The results demonstrate that CAMO outperforms state-of-the-art OPC engines from both academia and industry.
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Cited by top-tier papers4
- Curvilinear Optical Proximity Correction via Cardinal SplineSu Zheng, Xiaoxiao Liang, Ziyang Yu, Yuzhe Ma et al.DAC 2025 · 5 citations
- Intelligent OPC Engineer Assistant for Semiconductor ManufacturingGuojin Chen, Haoyu Yang, Bei Yu, Haoxing RenAAAI 2025 · 4 citations
- LithoGRPO: Fast Inverse Lithography via GRPO Reinforced Flow MatchingYao Lai, Xuyuan Xiong, Zeyue Xue, Guojin Chen et al.ICML 2026
- Optical Diffraction-based Convolution for Semiconductor LithographyYoung-Han Son, Dong-Hee Shin, Deok-Joong Lee, Hyun Jung Lee et al.CVPR 2026
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