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A Biologically Plausible Supervised Learning Method For Spiking Neurons With Real-World Applications, Lilin Guo
A Biologically Plausible Supervised Learning Method For Spiking Neurons With Real-World Applications, Lilin Guo
FIU Electronic Theses and Dissertations
Learning is central to infusing intelligence to any biologically inspired system. This study introduces a novel Cross-Correlated Delay Shift (CCDS) learning method for spiking neurons with the ability to learn and reproduce arbitrary spike patterns in a supervised fashion with applicability tospatiotemporalinformation encoded at the precise timing of spikes. By integrating the cross-correlated term,axonaland synapse delays, the CCDS rule is proven to be both biologically plausible and computationally efficient. The proposed learning algorithm is evaluated in terms of reliability, adaptive learning performance, generality to different neuron models, learning in the presence of noise, effects of its learning parameters and classification …