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High-throughput, energy-efficient network-on-chip-based hardware accelerators

delete2013-03-01
delete8
PRE
AI
T
Turbo Majumder
P
Partha Pratim Pande *
A
Ananth Kalyanaraman
DOI:10.1016/j.suscom.2013.01.001delete
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摘要

摘要

En 中文
Several emerging application domains in scientific computing demand high computation throughputs to achieve terascale or higher performance. Dedicated centers hosting scientific computing tools on a few high-end servers could rely on hardware accelerator co-processors that contain multiple lightweight custom cores interconnected through an on-chip network. With increasing workloads, these many-core platforms need to deliver high overall computation throughput while also being energy-efficient. Conventional multicore architectures can achieve a limited computational throughput due to the inherent multi-hop nature of the on-chip network infrastructure. By inserting long-range links that act as shortcuts in a regular network-on-chip (NoC) architecture, both the achievable bandwidth and energy efficiency of a multicore platform can be significantly enhanced. In this paper, we first propose a NoC-driven use-case model for throughput-oriented scientific applications, and subsequently use the model to study the effect of using long-range links in conjunction with different resource allocation strategies on reducing the overall on-chip communication and enhancing computational throughput. NoCs with both wired and on-chip wireless links are explored in the study. We also evaluate our NoC-based platforms with respect to energy-efficiency and power consumption. We analyze how throughput and power consumption are correlated with the statistical properties of the application traffic. In addition, we compare and analyze chip-level thermal profiles for these alternatives. Our experiments using kernels from a popular phylogenetic inference application suite show that we can deliver computation throughput over 10(11) operations per second, consuming similar to 0.5 nJ per operation, while ensuring that on-chip temperature variation is within 26 degrees C. (C) 2013 Elsevier Inc. All rights reserved.
Keyword:
Network-on-chip
Hardware accelerator
Energy efficient
Long-range links
Wireless

期刊

S
Sustainable Computing-Informatics and Systems
IF:
5.7
论文数:
966
被引数:
2.9K

机构

W
washington state university
学者数:
1.8W
论文数: 1.6W
被引数: 114
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