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Artículo
A study on the use of Edge TPUs for eye fundus image segmentation
Autor/es | Civit Masot, Javier
Luna Perejón, Francisco Rodríguez Corral, José María Domínguez Morales, Manuel Jesús Morgado Estévez, Arturo Civit Balcells, Antón |
Departamento | Universidad de Sevilla. Departamento de Arquitectura y Tecnología de Computadores |
Fecha de publicación | 2021 |
Fecha de depósito | 2022-07-20 |
Publicado en |
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Resumen | Medical image segmentation can be implemented using Deep Learning methods with fast and efficient
segmentation networks. Single-board computers (SBCs) are difficult to use to train deep networks due to their
memory and ... Medical image segmentation can be implemented using Deep Learning methods with fast and efficient segmentation networks. Single-board computers (SBCs) are difficult to use to train deep networks due to their memory and processing limitations. Specific hardware such as Google’s Edge TPU makes them suitable for real time predictions using complex pre-trained networks. In this work, we study the performance of two SBCs, with and without hardware acceleration for fundus image segmentation, though the conclusions of this study can be applied to the segmentation by deep neural networks of other types of medical images. To test the benefits of hardware acceleration, we use networks and datasets from a previous published work and generalize them by testing with a dataset with ultrasound thyroid images. We measure prediction times in both SBCs and compare them with a cloud based TPU system. The results show the feasibility of Machine Learning accelerated SBCs for optic disc and cup segmentation obtaining times below 25 ms per image using Edge TPUs. |
Agencias financiadoras | Ministerio de Ciencia, Innovación y Universidades (MICINN). España |
Identificador del proyecto | EQC2018-005190-P |
Cita | Civit Masot, J., Luna Perejón, F., Rodríguez Corral, J.M., Domínguez Morales, M.J., Morgado Estévez, A. y Civit Balcells, A. (2021). A study on the use of Edge TPUs for eye fundus image segmentation. Engineering Applications of Artificial Intelligence, 104 (September 2021, art. nº104384) |
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