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pennylane

Hardware-agnostic quantum ML framework with automatic differentiation. Use when training quantum circuits via gradients, building hybrid quantum-classical models, or needing device portability across IBM/Google/Rigetti/IonQ. Best for variational algorithms (VQE, QAOA), quantum neural networks, and integration with PyTorch or JAX. For hardware-specific optimizations use qiskit (IBM) or cirq (Google); for open quantum systems use qutip.

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Source facts

Repository
K-Dense-AI/scientific-agent-skills
Last source activity
July 26, 2026 at 16:29
Detected SKILL.md language
English
Stars
34,285
Forks
3,323

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