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Conor James Green

Publications and source records attributed to Conor James Green.

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NUNA: Characterizing and Mitigating Non-Uniform Network Access in Multi-Die GPU Scale-Up Systems

Graphics processing unit (GPU) architectures are growing in size to meet the increasing compute and memory requirements. As GPU sizes increase, intra-socket wire transfer delay increases significantly. While previous research has optimized for compute and memory locality within a socket, the spatial impact on inter-GPU communication has not been well-studied. We introduce the term non-uniform network access (NUNA) to describe this emerging optimization dimension in multi-GPU systems. We specifically focus on latency-sensitive collective communication, common in machine learning inference. First, we highlight the need for NUNA-aware routing (NAR), choosing optimized, spatially-aware inter-GPU paths in large scale-up network topologies. Second, we introduce NUNA-aware placement (NAP), placing threadblocks and data near I/O to optimize the inter-GPU traffic. We demonstrate that the NAP optimizations alone offer up to 1.5x collective speedups over a locality-unaware baseline. Combining NAP with NAR yields up to 1.8x faster collectives over the locality-unaware baseline. This leads to 7% mean (28% max) time per output token speedup in machine learning inference.

cs.DC

Throughput-Optimized Networks at Scale

Datacenter network design plays a critical role in AI training by supporting scaling to thousands of accelerators. An open problem, designing a near-optimal throughput oriented network-topology, routing, and collectives-has not been achieved at scale and with broad applicability to physical/implementation constraints. We address this problem with a compelling use-case, Google's TPU v4/5p supercomputer where the topology may be reconfigured to achieve higher all-to-all throughput, supporting large, parallelized AI training. We show that the existing TPU networks leave terabytes per second of throughput on the table and we fill that gap. This paper presents Throughput Optimized Networks at Scale (TONS), an automated network synthesis framework that meets the high-throughput demands of modern computing. TONS formulates topology synthesis as a linear optimization problem that maximizes a throughput-centric proxy metric, using theory and heuristics to scale to thousands of nodes. We further introduce a deadlock-free routing scheme compatible with limited virtual channels and optical switch faults, enabling the synthesized topologies to realize their predicted throughput gains in simulation. Evaluating uniform random and all-to-all traffic, TONS networks have a geometric mean speedups of 2.1x and 1.6x, respectively, over the best TPU v4/5p torus variants.

cs.NI