DOE OSTI · 3008784
Integrating and Characterizing HPC Task Runtime Systems for hybrid AI-HPC workloads
Abstract
Scientific workflows increasingly involve both HPC and machine-learning tasks, combining MPI-based simulations, training, and inference in a single execution. Launchers such as Slurm’s srun constrain concurrency and throughput, making them unsuitable for dynamic and heterogeneous workloads. We present a performance study of RADICAL-Pilot (RP) integrated with Flux and Dragon, two complementary runtime systems that enable hierarchical resource management and high-throughput function execution. Using synthetic and production-scale workloads on Frontier, we characterize the task execution properties of RP across runtime configurations. RP+Flux sustains up to 930 tasks/s, and RP+Flux+Dragon exceeds 1,500 tasks/s with over 99.6% utilization. In contrast, srun peaks at 152 tasks/s and degrades with scale, with utilization below 50%. For IMPECCABLE.v2 drug discovery campaign, RP+Flux reduces makespan by 30–60% relative to srun/Slurm and increases throughput more than four times on up to 1,024. These results demonstrate hybrid runtime integration in RP as a scalable approach for hybrid AI-HPC workloads.
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Merzky, Andre [RADICAL-Computing Inc., Wilmington, DE (United States)] (ORCID:0000000272284327), Titov, Mikhail [Brookhaven National Laboratory (BNL), Upton, NY (United States)] (ORCID:0000000323577382), Turilli, Matteo [Rutgers Univ., New Brunswick, NJ (United States); IE Univ., Madrid (Spain)] (ORCID:0000000305271435), Jha, Shantenu [Rutgers Univ., New Brunswick, NJ (United States); Princeton Plasma Physics Laboratory (PPPL), Princeton, NJ (United States); Princeton Univ., NJ (United States)] (ORCID:000000025040026X). 2025-11-15. Integrating and Characterizing HPC Task Runtime Systems for hybrid AI-HPC workloads. https://doi.org/10.1145/3731599.3767587
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