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Analytical Performance Estimation for Large-Scale Reconfigurable Dataflow Platforms

delete2021-08-12
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PRE
AI
R
Ryota Yasudo *
J
José G. F. Coutinho
A
Ana-Lucia Varbanescu
W
Wayne Luk
H
Hideharu Amano
T
Tobias Becker
C
Ce Guo
DOI:10.1145/3452742delete
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Abstract

Abstract

En 中文
Next-generation high-performance computing platforms will handle extreme data- and compute-intensive problems that are intractable with today's technology. A promising path in achieving the next leap in high-performance computing is to embrace heterogeneity and specialised computing in the form of reconfigurable accelerators such as FPGAs, which have been shown to speed up compute-intensive tasks with reduced power consumption. However, assessing the feasibility of large-scale heterogeneous systems requires fast and accurate performance prediction. This article proposes Performance Estimation for Reconfigurable Kernels and Systems (PERKS), a novel performance estimation framework for reconfigurable dataflow platforms. PERKS makes use of an analytical model with machine and application parameters for predicting the performance of multi-accelerator systems and detecting their bottlenecks. Model calibration is automatic, making the model flexible and usable for different machine configurations and applications, including hypothetical ones. Our experimental results show that PERKS can predict the performance of current workloads on reconfigurable dataflow platforms with an accuracy above 91%. The results also illustrate how the modelling scales to large workloads, and how performance impact of architectural features can be estimated in seconds.
Keywords:
Performance modelling
heterogeneous systems
reconfigurable dataflow platforms
FPGAs

Journal

ACM Transactions on Reconfigurable Technology and Systems cover
ACM Transactions on Reconfigurable Technology and Systems
IF:
2.8
Papers:
597
Citations:
810

Organization

K
Keio University
Scholars:
2.2W
Papers: 1.6W
Citations: 13
U
university of amsterdam
Scholars:
6.0W
Papers: 5.1W
Citations: 94
H
Hiroshima University
Scholars:
2.1W
Papers: 1.5W
Citations: 1.3W
I
Imperial College London
Scholars:
8.3W
Papers: 7.3W
Citations: 11.1W
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