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Galen M. Shipman

Publications and source records attributed to Galen M. Shipman.

2 recordsLinked to original sources

PIMID: A Full-System Simulator with Intricacy and Diversity for Processing-in-Memory

Processing-in-Memory addresses the memory wall by co-locating computation with memory, but because real PIM hardware remains scarce, simulation is the primary way to explore the PIM design space. Yet existing PIM simulators each cover only part of that space: they typically model a single memory technology, fix processing elements at one level of the memory hierarchy, support a single execution model, and stop at the device boundary. We therefore present PIMID, an execution- and trace-driven full-system simulator that closes these gaps in one tool. PIMID supports both the shared-memory and message-passing execution models, running annotated parallel code in OpenMP and MPI side by side across eleven memory technologies (seven DRAM standards, SRAM, and three non-volatile memories); it places PEs anywhere from subarrays to logic dies, sweeps PE count and core-model fidelity, and prices the in-memory network per technology from measured congestion. Its single-process host-device co-simulation resolves an end-to-end time and energy breakdown (host preparation, device compute, and explicit boundary charges) that device-only tools cannot produce. Across the resulting dual-execution-model dataset, PIMID shows that the memory technology alone moves execution time by more than an order of magnitude and that the best host main memory is not the best PIM substrate; that regular kernels scale superlinearly with PE count as in-memory bandwidth co-scales with compute; that graph traversal under message-passing hits a collective-communication wall absent under shared memory; and that at full-system scope the offload trades time for energy only on the bandwidth-class memory: shared-memory offload saves energy on HBM3 while a 16-core host keeps every end-to-end time win. PIMID's plugin interfaces let new engines and models be added through standardized YAML specifications as PIM technology evolves.

cs.AR↗

Early Performance Results on 4th Gen Intel(R) Xeon (R) Scalable Processors with DDR and Intel(R) Xeon(R) processors, codenamed Sapphire Rapids with HBM

The Crossroads supercomputer was designed to simulate some of the most complex physical devices in the world. These simulations routinely require 1/2 petabyte or more of system memory running on thousands of compute nodes for months at a time on the most powerful supercomputers. Improvements in time to solutions for these workloads can have major impact on our mission capabilities. In this paper we present early results of representative application workloads on 4th Gen Intel Xeon and Intel Xeon Processors codenamed Sapphire Rapids with HBM. These results demonstrate an extremely promising 8.57x improvement (node to node) over our prior generation Intel Broadwell (BDW) based HPC systems. No code modifications were required to achieve this speedup, providing a compelling path forward toward major reductions in time to solution and the complexity of physical systems that can be simulated in the future.

cs.DC↗