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Benchmarking New Hardware For Machine Learning In Particle Physics

Authors: Stefano Vergani;

Benchmarking New Hardware For Machine Learning In Particle Physics

Abstract

The popularity of Deep Learning (DL) has grown exponentially in all scientific fields, included particle physics. The amount of data and its complexity has grown as well, and the computing power required to perform inference can nowadays hardly be managed. Central Processing Units (CPUs) are affordable but their ability to run Artificial Intelligence (AI) is very limited. In recent years, Graphics Processing Units (GPUs) have been used with interesting results but they expensive and require a lot of power. Recently, Google has produced the Edge Tensor Processing Unit (TPU) made explicitly to perform inference. It is cheap, it consumes less power, and it comes with portable size. A generic Liquid Argon Time-Projection Chamber (LArTPC) has been simulated and images produced by fictitious neutrino interactions have been used to benchmark the Edge TPU. Its performance running different popular DL algorithms has been tested and compared with CPUs and GPUs.

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This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
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popularity
This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network.
BIP!Popularity provided by BIP!
influence
This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
BIP!Influence provided by BIP!
impulse
This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network.
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