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Spatz: Clustering Compact RISC-V-Based Vector Units to Maximize Computing Efficiency

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arxiv 2309.10137 v2 pith:ER5TGUAS submitted 2023-09-18 cs.AR

classification cs.AR
keywords vectorclusterdp-gflopsefficiencyspatzcompactenergyreaches
verification ladder T0 review T1 audit T2 compute T3 formal
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The ever-increasing computational and storage requirements of modern applications and the slowdown of technology scaling pose major challenges to designing and implementing efficient computer architectures. To mitigate the bottlenecks of typical processor-based architectures on both the instruction and data sides of the memory, we present Spatz, a compact 64-bit floating-point-capable vector processor based on RISC-V's Vector Extension Zve64d. Using Spatz as the main Processing Element (PE), we design an open-source dual-core vector processor architecture based on a modular and scalable cluster sharing a Scratchpad Memory (SCM). Unlike typical vector processors, whose Vector Register Files (VRFs) are hundreds of KiB large, we prove that Spatz can achieve peak energy efficiency with a latch-based VRF of only 2 KiB. An implementation of the Spatz-based cluster in GlobalFoundries' 12LPP process with eight double-precision Floating Point Units (FPUs) achieves an FPU utilization just 3.4% lower than the ideal upper bound on a double-precision, floating-point matrix multiplication. The cluster reaches 7.7 FMA/cycle, corresponding to 15.7 DP-GFLOPS and 95.7 DP-GFLOPS/W at 1 GHz and nominal operating conditions (TT, 0.80V, 25C), with more than 55% of the power spent on the FPUs. Furthermore, the optimally-balanced Spatz-based cluster reaches a 95.0% FPU utilization (7.6 FMA/cycle), 15.2 DP-GFLOPS, and 99.3 DP-GFLOPS/W (61% of the power spent in the FPU) on a 2D workload with a 7x7 kernel, resulting in an outstanding area/energy efficiency of 171 DP-GFLOPS/W/mm2. At equi-area, the computing cluster built upon compact vector processors reaches a 30% higher energy efficiency than a cluster with the same FPU count built upon scalar cores specialized for stream-based floating-point computation.

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Cited by 1 Pith paper

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  1. A Reconfigurable and Representation-Adaptive ISA-Based Architecture for Efficient DNN Acceleration

    cs.AR 2026-07 accept novelty 6.5 of 10

    A representation-adaptive ML-oriented ISA plus reconfigurable architecture with RNS dynamic precision delivers 5–10 TOPS/W and up to 1.2× efficiency over fixed-point while remaining programmable.

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