| name | hamqasbench-hamiltonian-qas-benchmark |
| description | Hamiltonian-informed diagnostic benchmark for Quantum Architecture Search (QAS). Organizes molecules into structural tiers via Pauli operator fingerprints, computational basis representation, and ground-state entanglement. Detects failure modes invisible to energy-only metrics: over-parameterization, eigenstate commitment, representation bottleneck, topology-induced routing failure. Activation: QAS benchmark, Hamiltonian structure, quantum architecture search evaluation, circuit structure analysis, variational circuit diagnostics |
| metadata | {"arxiv_id":"2607.04845","published":"2026-07-06","authors":"HamQASBench authors","tags":["quantum","architecture-search","benchmark","hamiltonian","variational"]} |
HamQASBench: Hamiltonian-Informed QAS Benchmark
Core Methodology
Problem: Existing QAS benchmarks organize by molecular identity or qubit count — criteria agnostic to Hamiltonian structure. They rely solely on energy accuracy, which cannot detect structural failures (over-parameterization, eigenstate commitment under degeneracy, representation bottleneck).
Solution: HamQASBench organizes 11 molecules into 5 structural tiers via fingerprints from:
- Pauli operator basis — Hamiltonian term structure
- Computational basis representation — sparsity patterns
- Ground-state entanglement — per-qubit entanglement analysis
Key diagnostic tools:
- Post-hoc critical-structure extraction: identifies minimal circuits consistent with each tier's requirements
- Per-qubit entanglement analysis
- Pairwise state fidelity (beyond energy accuracy)
Failure Modes Detected
| Failure Mode | Regime | Detection Method |
|---|
| Over-parameterization | Minimalism regime | Critical-structure extraction vs actual circuit size |
| Eigenstate commitment | Degenerate systems | Pairwise state fidelity |
| Representation bottleneck | Strongly correlated systems | Per-qubit entanglement analysis |
| Topology-induced routing failure | Hardware-constrained search | Circuit topology vs Hamiltonian structure |
| Search space growth | Scalability | Circuit complexity vs qubit count |
Usage Patterns
Pattern 1: QAS Method Evaluation
When evaluating a QAS method, use Hamiltonian-informed tiering instead of molecule-by-molecule benchmarking:
- Extract Pauli fingerprints from target Hamiltonian
- Assign molecule to structural tier (1-5)
- Run QAS method, measure per-tier performance
- Apply critical-structure extraction to check minimal circuit consistency
- Compute per-qubit entanglement and pairwise fidelity
Pattern 2: Detecting Structural Failures
When energy accuracy looks good but results are suspect:
- Check per-qubit entanglement distribution vs expected
- Run pairwise state fidelity between QAS output and known structure
- Extract minimal circuit from result and compare to tier requirements
- Flag over-parameterization if circuit >> minimal requirement
Pattern 3: Hardware-Aware QAS
When evaluating QAS under hardware topology constraints:
- Map Hamiltonian structure to device topology
- Identify routing conflicts (structure vs connectivity mismatch)
- Measure topology-induced performance degradation per tier
Activation Keywords
- quantum architecture search benchmark
- Hamiltonian-informed benchmark
- QAS evaluation
- variational circuit structure analysis
- quantum circuit diagnostics
- ground-state entanglement analysis
- QAS failure mode detection
- 量子架构搜索基准
- 哈密顿量结构分析
Tools Used
- terminal: Run benchmarking scripts, analyze results
- write_file: Create benchmark configurations
- search_files: Check existing QAS skills
Related Skills
quantum-neural-architecture-search — QAS methodology
magic-informed-quantum-architecture-search — magic-state-based QAS
zero-shot-quantum-nas — zero-shot QAS approach
quantum-ml-patterns — QML evaluation patterns