qubithubquantum-kernel-svm
Trains a classical Support Vector Machine on a kernel matrix computed from quantum circuits. The ZZ feature map encodes data into an exponentially large Hilbert space via entangling RZ(x_i·x_j·π) gates, and the inversion test measures K(x,y) = |⟨φ(x)|φ(y)⟩|² as the all-zeros probability. Includes synthetic data generation, SVM dual optimization, and classification evaluation.
- Framework
- PennyLane
- Qubits
- 4
- Depth
- 8
- Gate set
- RZ, RY, CX
- Licence
- Not specified
- Version
- v1
- Updated
- 3 days ago
- Last run
- 3 months ago
qubithub.toml · 361 B
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@software{qubithub_quantumkernelsvm_2026,
author = {QubitHub Circuits},
title = {Quantum Kernel SVM},
year = {2026},
version = {v1},
url = {https://qubithub.co/qubithub/quantum-kernel-svm},
}Generated from this circuit's metadata. QubitHub does not mint DOIs, so this is not a registered identifier — check it against your venue's requirements before publishing.