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Photonic KAN: a Kolmogorov-Arnold network inspired efficient photonic neuromorphic architecture
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abstract
Kolmogorov-Arnold Networks (KAN) models were recently proposed and claimed to provide improved parameter scaling and interpretability compared to conventional multilayer perceptron (MLP) models. Inspired by the KAN architecture, we propose the Photonic KAN -- an integrated all-optical neuromorphic platform leveraging highly parametric optical nonlinear transfer functions along KAN edges. In this work, we implement such nonlinearities in the form of cascaded ring-assisted Mach-Zehnder Interferometer (MZI) devices. This innovative design has the potential to address key limitations of current photonic neural networks. In our test cases, the Photonic KAN showcases enhanced parameter scaling and interpretability compared to existing photonic neural networks. The photonic KAN achieves approximately 65$\times$ reduction in energy consumption and area, alongside a 50$\times$ reduction in latency compared to previous MZI-based photonic accelerators with similar performance for function fitting task. This breakthrough presents a promising new avenue for expanding the scalability and efficiency of neuromorphic hardware platforms.
Forward citations
Cited by 2 Pith papers
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Physical Analogue Kolmogorov-Arnold Networks based on Reconfigurable Nonlinear-Processing Units
A proposed analog KAN chip uses silicon RNPUs as physically programmable nonlinear edges, with estimated ~250 pJ per inference and ~10x smaller area than a digital MLP.
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Programmable k-local Ising Machines and all-optical Kolmogorov-Arnold Networks on Photonic Platforms
A proposal to make one spatial light modulator implement programmable higher-order Ising terms and all-optical KAN nonlinearities, but the core polynomial mechanism is not compatible with linear propagation.
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