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cv-photonic-qnn-edge-medical

Parameter-efficient continuous-variable photonic quantum neural networks for edge medical AI. Simplified Phi-D-U1 CV-QNN architecture cuts trainable parameters 40-45%, mitigates barren plateaus, achieves 100% calibrated test accuracy with 18 parameters for oral cancer detection. Use when: CV quantum neural network design, photonic quantum ML, medical image classification on edge devices, barren plateau mitigation, parameter-efficient quantum classifiers, room-temperature quantum computing.

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Repository
hiyenwong/ai_collection
Last source activity
July 13, 2026 at 02:00
Detected SKILL.md language
English
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2
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0

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