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Lecture Notes in Electrical Engineering, pages 97-102
Neural Architecture for Tennis Shot Classification on Embedded System
Publication type: Book Chapter
Publication date: 2024-01-12
Q4
SJR: 0.147
CiteScore: 0.7
Impact factor: —
ISSN: 18761100, 18761119
Abstract
Data analysis has become a common practice in professional and amateur sport activities, to monitor the player state and enhance performance. In tennis, performance analysis requires detecting and recognizing the different types of shots. With the advances in microcontrollers and machine learning algorithms, this topic becomes ever more considerable. We propose a 1-D convolutional neural network (CNN) model and an embedded system based on Arduino-Nano system for real-time shot classification. The network is trained through a dataset composed of three different tennis shot types, with 6 features recorded by an inertial device placed on the racket. Results demonstrate that the proposed model is able to discriminate the tennis shots with high accuracy, also generalizing to different users. The network has been deployed on a low-cost Arduino nano 33 IoT model, with an inference time of 65 ms.
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Dabbous A. et al. Neural Architecture for Tennis Shot Classification on Embedded System // Lecture Notes in Electrical Engineering. 2024. pp. 97-102.
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Dabbous A., Fresta M., Bellotti F., Berta R. Neural Architecture for Tennis Shot Classification on Embedded System // Lecture Notes in Electrical Engineering. 2024. pp. 97-102.
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TY - GENERIC
DO - 10.1007/978-3-031-48121-5_14
UR - https://link.springer.com/10.1007/978-3-031-48121-5_14
TI - Neural Architecture for Tennis Shot Classification on Embedded System
T2 - Lecture Notes in Electrical Engineering
AU - Dabbous, Ali
AU - Fresta, Matteo
AU - Bellotti, Francesco
AU - Berta, Riccardo
PY - 2024
DA - 2024/01/12
PB - Springer Nature
SP - 97-102
SN - 1876-1100
SN - 1876-1119
ER -
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@incollection{2024_Dabbous,
author = {Ali Dabbous and Matteo Fresta and Francesco Bellotti and Riccardo Berta},
title = {Neural Architecture for Tennis Shot Classification on Embedded System},
publisher = {Springer Nature},
year = {2024},
pages = {97--102},
month = {jan}
}