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  4. Analysis of Neural Network Inference Response Times on Embedded Platforms
 
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2024
Conference Paper
Title

Analysis of Neural Network Inference Response Times on Embedded Platforms

Abstract
The response time of Artificial Neural Network (ANN)-inference is of utmost importance in embedded applications, particularly continual stream-processing. Predictive maintenance applications require timely predictions of state changes. This study serves to enable the reader to estimate the response time of a given model based on the underlying platform, and emphasizes the relevance of benchmarking generic ANN applications on edge devices. We analyze the influence of net parameters, activation functions as well as single-and multithreading on execution times. Potential side effects such as tact rate variances or other hardware-related influences are being outlined and accounted for. The results underline the complexity of task-partitioning and scheduling strategies while emphasizing the necessity of precise concertation of the parameters to achieve optimal performance on any platform. This study shows that cutting-edge frameworks don’t necessarily perform the required concertations automatically for all configurations, which may negatively impact performance.
Author(s)
Huber, Patrick
Hochschule Kempten  
Göhner, Ulrich
Hochschule Kempten  
Trapp, Mario  
Fraunhofer-Institut für Kognitive Systeme IKS  
Zender, Jonathan
Hochschule Kempten  
Lichtenberg, Rabea
Hochschule Kempten  
Mainwork
Asian Conference on Communication and Networks, ASIANComNet 2024  
Conference
Asian Conference on Communication and Networks 2024  
DOI
10.1109/ASIANComNet63184.2024.10811052
Language
English
Fraunhofer-Institut für Kognitive Systeme IKS  
Fraunhofer Group
Fraunhofer-Verbund IUK-Technologie  
Keyword(s)
  • artificial neural network

  • ANN

  • ANN inference

  • tensorflow lite

  • embedded systems

  • benchmarking

  • response time

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