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HPCA2026顶会

HDPAT: Hierarchical Distributed Page Address Translation for Wafer-Scale GPUs

Daoxuan Xu, Ying Li, Yuwei Sun, Jie Ren, Yifan Sun

2026年份
1被引次数
1顶会引用

摘要

A Wafer-scale GPU connects a large number of chiplets via a high-bandwidth, low-latency interposer-based network, promising to overcome the communication bottleneck of traditional multi-GPU systems. While prior work has prototyped wafer-scale GPUs to demonstrate technical feasibility, scaling to massive chiplet counts creates new bottlenecks: virtual-tophysical address translation becomes severely constrained by massive concurrent requests and long multi-hop network latencies. We propose HDPAT, a hardware-accelerated distributed address translation system that addresses this challenge through three complementary techniques: (1) Concentric caching converts near-IOMMU chiplets into hierarchical translation caches based on their distance to the IOMMU. A lightweight rotation mechanism ensures that there is always a nearby chiplet that can provide translation caching. (2) The redirection table further reduces the burden of IOMMU by delegating translations to caching chiplets, and (3) Prefetching proactively delivers potentially needed address translation into the chiplet to improve translation cache hit rate. Experimental results on 14 representative workloads show that HDPAT improves overall performance by an average of1.57×1.57 \times.

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