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research article

BiomedBench: A benchmark suite of TinyML biomedical applications for low-power wearables

Samakovlis, Dimitrios  
•
Albini, Stefano  
•
Rodríguez Álvarez, Rubén  
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The design of low-power wearables for the biomedical domain has received a lot of attention in recent decades, as technological advances in chip manufacturing have allowed real-time monitoring of patients using low-complexity ML within the mW range. Despite advances in application and hardware design research, the domain lacks a systematic approach to hardware evaluation. In this work, we propose BiomedBench, a new benchmark suite composed of complete end-to-end TinyML biomedical applications for real-time monitoring of patients using wearable devices. Each application presents different requirements during typical signal acquisition and processing phases, including varying computational workloads and relations between active and idle times. Furthermore, our evaluation of five state-of-the-art low-power platforms in terms of energy efficiency shows that modern platforms cannot effectively target all types of biomedical applications. BiomedBench will be released as an open-source suite to standardize hardware evaluation and guide hardware and application design in the TinyML wearable domain.

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Type
research article
ArXiv ID

2406.03886

Author(s)
Samakovlis, Dimitrios  

EPFL

Albini, Stefano  

EPFL

Rodríguez Álvarez, Rubén  

EPFL

Constantinescu, Denisa-Andreea  

EPFL

Schiavone, Pasquale Davide  

EPFL

Peon Quiros, Miguel  
Atienza Alonso, David  

EPFL

Date Issued

2024-05-31

Subjects

Benchmarking

•

TinyML

•

biomedical

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wearable

•

low-power

•

signal processing

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
ESL  
ECOCLOUD  
Available on Infoscience
October 11, 2024
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/208450.6
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