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Real-Time Dynamic IR-drop Prediction for IR ECO
會議論文集

Real-Time Dynamic IR-drop Prediction for IR ECO

Yu-Che Lee, Yu-Hsuan Chen, Yu-Chen Cheng, Yong-Fong Chang, Jia-Wei Lin, Hsun-Wei Pao, Yung-Chih Chen, Yi-Ting Li, Wuqian Tang, Shih-Chieh Chang, …
Proceedings of the 62nd Annual ACM/IEEE Design Automation Conference, 頁碼.1-7
ACM Conferences
DAC '25: 62nd Annual ACM/IEEE Design Automation Conference
22/06/2023
Web of Science ID: WOS:001672958600422

摘要

General and reference General and reference -- Cross-computing tools and techniques General and reference -- Cross-computing tools and techniques -- Experimentation Hardware Hardware -- Very large scale integration design Hardware -- Very large scale integration design -- Design reuse and communication-based design Human-centered computing Human-centered computing -- Human computer interaction (HCI) Human-centered computing -- Human computer interaction (HCI) -- HCI design and evaluation methods Human-centered computing -- Human computer interaction (HCI) -- HCI design and evaluation methods -- User models Human-centered computing -- Ubiquitous and mobile computing Information systems Information systems -- Information retrieval Information systems -- Information retrieval -- Evaluation of retrieval results Information systems -- Information retrieval -- Evaluation of retrieval results -- Retrieval efficiency Information systems -- Information retrieval -- Users and interactive retrieval Information systems -- World Wide Web Information systems -- World Wide Web -- Web applications Information systems -- World Wide Web -- Web applications -- Electronic commerce Information systems -- World Wide Web -- Web applications -- Electronic commerce -- Online shopping
During the IR Engineering Change Order (ECO) stage, cell moving leads to uncertain IR-drop results, requiring designers to explore multiple ECO candidates in each iteration to find a solution that effectively mitigates IR-drop, resulting in a long evaluation time. Although machine learning (ML)-based predictors have been proposed to expedite IR-drop evaluation, partial simulations are still needed to update features after ECO, taking over an hour and delaying IR-drop results. In this work, we propose a real-time dynamic IR-drop estimation method based on an XGBoost model with a global view of a cell's surroundings. After ECO, our method provides dynamic IR-drop results in minutes without running any simulations and thus achieves real-time estimation. This allows designers to evaluate multiple ECO candidates concurrently in a single iteration. We conducted the experiments on five ECO candidates of an industrial design with 3nm technology. The results show that the proposed model can effectively predict the IR-drop variations of moved cells after ECO with over 93% of fixed cells detected and an average MAE of 8.75mV achieved. Furthermore, our method achieves an 88X speedup over Voltus (commercial tool) and a 64X speedup over traditional ML predictors when evaluating a single ECO candidate. The speedup is expected to increase as the number of ECO candidates increases.

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