Stochastic Quantum Spiking Neural Networks with Quantum Memory and Local Learning
Jiechen Chen, Bipin Rajendran, Osvaldo Simeone

TL;DR
This paper introduces a stochastic quantum spiking neural network model with internal quantum memory and local learning, enabling efficient event-driven processing and training without classical backpropagation, showing improvements over prior models.
Contribution
It proposes a novel SQS neuron with quantum memory and local learning rules, advancing hybrid neuromorphic-quantum AI models.
Findings
Improved performance over previous quantum spiking models.
Outperforms classical neural networks with similar parameter counts.
Demonstrates effective learning on neuromorphic datasets.
Abstract
Neuromorphic and quantum computing have recently emerged as promising paradigms for advancing artificial intelligence, each offering complementary strengths. Neuromorphic systems built on spiking neurons excel at processing time series data efficiently through sparse, event-driven computation, consuming energy only upon input events. Quantum computing, on the other hand, operates on state spaces that grow exponentially in dimension with the number of qubits -- as a consequence of tensor-product composition -- with quantum states admitting superposition across basis states and entanglement between subsystems. Hybrid approaches combining these paradigms have begun to show potential, but existing quantum spiking models have important limitations. Notably, they implement classical memory mechanisms on single qubits, requiring repeated measurements to estimate firing probabilities, while…
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Taxonomy
TopicsNeural Networks and Reservoir Computing · Advanced Memory and Neural Computing · Quantum Computing Algorithms and Architecture
