Anna Maria Mandas

SYNtzulu: A Tiny RISC-V-Controlled SNN Processor for Real-Time Sensor Data Analysis on Low-Power FPGAs

Leone G.
;
Scrugli M. A.;Martis L.;Raffo L.;Meloni P.
2024-01-01

Abstract

Spiking Neural Networks (SNNs) are energy-and performance-efficient tools that have been found to be very useful in AI applications at the edge. This paper introduces SYNtzulu, an SNN processing element designed to be used in low-cost and low-power FPGA devices for near-sensor data analysis. The system is equipped with a RISC-V subsystem responsible for controlling the input/output and setting runtime parameters, thus increasing its flexibility. We evaluated the system, which was implemented on a Lattice iCE40UP5K FPGA, in various use cases employing SNNs with accuracy comparable to the state-of-the-art. SYNtzulu dissipates a maximum power of 12.05 mW when performing SNN inference, which can be reduced to an average of just 1.45 mW through the use of dynamic power management.
2024
Inglese
1
12
12
https://ieeexplore.ieee.org/document/10666827
Esperti anonimi
internazionale
scientifica
Field programmable gate arrays; Encoding; Neurons; Computer architecture; Real-time systems; Hardware; Synapses; Spiking neural network (SNN); Edge AI; Field programmable gate array (FPGA); Energy efficiency; RISC-V
no
Leone, G.; Scrugli, M. A.; Badas, L.; Martis, L.; Raffo, L.; Meloni, P.
1.1 Articolo in rivista
info:eu-repo/semantics/article
1 Contributo su Rivista::1.1 Articolo in rivista
262
6
open
   Edge AI Technologies for Optimised Performance Embedded Processing
   EdgeAI
   European Commission
   Horizon Europe Framework Programme
   101097300
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