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Physically Aware Synthesis Revisited: Guiding Technology Mapping with Primitive Logic Gate Placement

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arxiv 2408.07886 v1 pith:XXDZ2LBY submitted 2024-08-15 cs.LO

classification cs.LO
keywords powermodeperformancedesignlogicmappingsynthesistechnology
verification ladder T0 review T1 audit T2 compute T3 formal
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A typical VLSI design flow is divided into separated front-end logic synthesis and back-end physical design (PD) stages, which often require costly iterations between these stages to achieve design closure. Existing approaches face significant challenges, notably in utilizing feedback from physical metrics to better adapt and refine synthesis operations, and in establishing a unified and comprehensive metric. This paper introduces a new Primitive logic gate placement guided technology MAPping (PigMAP) framework to address these challenges. With approximating technology-independent spatial information, we develop a novel wirelength (WL) driven mapping algorithm to produce PD-friendly netlists. PigMAP is equipped with two schemes: a performance mode that focuses on optimizing the critical path WL to achieve high performance, and a power mode that aims to minimize the total WL, resulting in balanced power and performance outcomes. We evaluate our framework using the EPFL benchmark suites with ASAP7 technology, using the OpenROAD tool for place-and-route. Compared with OpenROAD flow scripts, performance mode reduces delay by 14% while increasing power consumption by only 6%. Meanwhile, power mode achieves a 3% improvement in delay and a 9% reduction in power consumption.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. MCP4EDA: LLM-Powered Model Context Protocol RTL-to-GDSII Automation with Backend Aware Synthesis Optimization

    cs.AR 2025-07 conditional novelty 6.0 of 10

    MCP4EDA is an MCP server that lets LLMs orchestrate the open-source RTL-to-GDSII flow and iteratively refine synthesis scripts from post-layout metrics.

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