Ponencia
Scene Context Classification with Event-Driven Spiking Deep Neural Networks
Autor/es | Negri, Pablo
Soto, Miguel Linares Barranco, Bernabé Serrano Gotarredona, María Teresa |
Departamento | Universidad de Sevilla. Departamento de Arquitectura y Tecnología de Computadores |
Fecha de publicación | 2018 |
Fecha de depósito | 2020-10-29 |
Publicado en |
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ISBN/ISSN | 978-1-5386-9116-8 |
Resumen | Event-Driven computation is attracting growing attention
among researchers for several reasons. On one hand,
the availability of new bio-inspired retina-like vision sensors
that provide spiking outputs, like the Dynamic ... Event-Driven computation is attracting growing attention among researchers for several reasons. On one hand, the availability of new bio-inspired retina-like vision sensors that provide spiking outputs, like the Dynamic Vision Sensor (DVS) make it possible to demonstrate energy efficient and highspeed complex vision tasks. On the other hand, the emergence of abundant new nanoscale devices that operate as tunable two-terminal resistive elements, which when operated through dynamic pulsing techniques emulate learning and processing in the brain, promise an explosion of highly compact energy efficient neuromorphic event-driven applications. In this paper we focus for the first time on a high-level cognitive task, namely scene context classification, performed by event-driven computations and using real sensory data from a DVS camera. |
Agencias financiadoras | European Union (UE) European Union (UE) Ministerio de Economía y Competitividad (MINECO). España |
Identificador del proyecto | H2020 grant 644096
H2020 grant 687299 TEC2015-63884-C2-1-P |
Cita | Negri, P., Soto, M., Linares Barranco, B. y Serrano Gotarredona, M.T. (2018). Scene Context Classification with Event-Driven Spiking Deep Neural Networks. En ICECS 2018: 25th IEEE International Conference on Electronics, Circuits and Systems (569-572), Bordeaux, France: IEEE Computer Society. |
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