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ATTENTION ROUTING: TRACK-ASSIGNMENT DETAILED ROUTING USING ATTENTION-BASED REINFORCEMENT LEARNING

机译:注意路由:跟踪 - 分配使用基于注意力的强化学习进行详细的路由

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In the physical design of integrated circuits, global and detailed routing are critical stages involving the determination of the interconnected paths of each net on a circuit while satisfying the design constraints. Existing actual routers as well as mutability predictors either have to resort to expensive approaches that lead to high computational times, or use heuristics that do not generalize well. Even though new, learning-based routing methods have been proposed to address this need, requirements on labelled data and difficulties in addressing complex design rule constraints have limited their adoption in advanced technology node physical design problems. In this work, we propose a new router - attention router, which is the first attempt to solve the track-assignment detailed routing problem by applying reinforcement learning. Complex design rule constraints are encoded into the routing algorithm and an attention-model-based REINFORCE algorithm is applied to solve the most critical step in routing: sequencing device pairs to be routed. The attention router and its baseline genetic router are applied to solve different commercial advanced technologies analog circuits problem sets. The attention router demonstrates generalization ability to unseen problems and is also able to achieve more than 100× acceleration over the genetic router without severely compromising the routing solution quality. Increasing the number of training problems greatly improves the performance of attention router. We also discover a similarity between the at- tention router and the baseline genetic router in terms of positive correlations in cost and routing patterns, which demonstrate the attention router's ability to be utilized not only as a detailed router but also as a predictor for routability and congestion.
机译:在集成电路的物理设计中,全局和详细路由是涉及确定电路上每个网络的互连路径的关键阶段,同时满足设计约束。现有的实际路由器以及可变的预测器要么必须诉诸昂贵的方法,导致高计算时间,或者使用不概括的启发式。尽管已经提出了新的基于学习的路由方法来解决这种需求,但解决复杂设计规则约束的标记数据和困难的要求限制了他们在高级技术节点物理设计问题中的采用。在这项工作中,我们提出了一种新的路由器 - 注意路由器,这是第一次通过应用强化学习来解决轨道分配详细路由问题的尝试。复杂的设计规则约束被编码到路由算法中,并应用了一种注意力模型的增强算法来解决路由中最关键的步骤:测序设备对进行路由。注意路由器及其基线遗传路由器应用于解决不同的商业先进技术模拟电路问题集。关注路由器展示了解开问题的泛化能力,并且还能够在遗传路由器上实现超过100倍的加速,而不会严重影响路由解决方案质量。增加训练问题的数量大大提高了注意力路由器的性能。我们还在成本和路由模式的正相关性方面发现了出现路由器和基线遗传路由器之间的相似性,这证明了注意路由器不仅作为详细路由器而使用的能力,而且是作为可排卵的预测因素拥塞。

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