| name | quantum-network-performance-metrics |
| description | Structured monitoring framework for quantum networks with standardized performance metrics including quality (entanglement fidelity, QBER), throughput/latency (entanglement rate, waiting time), timing (coincidence window, jitter), and exogenous factors (temperature, humidity, vibrations). Enables real-time observability, fault diagnosis, adaptive timing, and entanglement routing. Activation: quantum network monitoring, quantum network metrics, QBER monitoring, entanglement fidelity tracking, quantum network observability, quantum network performance. |
| metadata | {"arxiv_id":"2607.05642","published":"2026-07-09","authors":"Oak Ridge National Laboratory researchers","tags":["quantum","networking","systems-engineering","monitoring","performance"]} |
Quantum Network Performance Metrics
Description
Structured monitoring framework for quantum networks enabling standardized performance metrics, real-time observability, fault diagnosis, and adaptive control. Moves quantum networks from experimental testbeds to production systems with measurable KPIs.
Core Metrics Framework
1. Quality Metrics
- Entanglement Fidelity: Measure of how closely the distributed entangled state matches the ideal target state
- QBER (Quantum Bit Error Rate): Error rate in transmitted quantum bits, directly impacts key rate in QKD
- Loss: Photon transmission loss across the quantum channel (dB)
- Dark Count Rate: Spurious detector events contributing to noise
2. Throughput and Latency Metrics
- Entanglement Rate: Rate at which entangled pairs are successfully distributed (pairs/second)
- Waiting Time: Time from entanglement request to successful distribution
3. Timing Metrics
- Coincidence Window: Time window for identifying correlated detection events
- Production Jitter: Variation in entanglement generation timing
- Coincidence Jitter: Variation in detection correlation timing
4. Exogenous Factors
- Temperature: Environmental temperature affecting fiber/optical components
- Humidity: Environmental humidity affecting optical coupling
- Vibrations: Mechanical vibrations affecting alignment and phase stability
Usage Patterns
Pattern 1: Real-Time Monitoring Setup
- Deploy environmental sensors (temperature, humidity, vibration) alongside quantum network hardware
- Configure non-invasive data collection to avoid perturbing quantum states
- Set up alert thresholds for each metric based on system requirements
- Implement automated log aggregation for post-hoc analysis
Pattern 2: Fault Diagnosis
- Correlate QBER spikes with environmental sensor data
- Identify whether degradation is due to internal (detector drift, laser power) or external (vibration, temperature) factors
- Use coincidence jitter analysis to diagnose timing synchronization issues
Pattern 3: Adaptive Control
- Feed monitoring data into entanglement routing algorithms
- Dynamically adjust coincidence windows based on measured jitter
- Route around high-loss segments identified through real-time fidelity monitoring
Trade-offs
Observability vs. Performance
- Non-invasive monitoring: Adds minimal overhead but limited detail
- Active probing: More detailed diagnostics but perturbs quantum states and reduces throughput
- Recommendation: Use non-invasive monitoring for production, active probing for maintenance windows
Pitfalls
- Metric correlation trap: High QBER may correlate with temperature but be caused by a different factor (laser drift). Always verify root cause before acting.
- Over-monitoring: Too many concurrent monitoring processes can introduce noise and reduce entanglement rate. Balance observability needs with system performance.
- Alert fatigue: Set meaningful thresholds based on operational experience, not theoretical limits. Use rolling baselines that adapt to seasonal/environmental changes.
- Missing exogenous factors: Vibration and humidity are often overlooked but significantly affect optical alignment in long-duration deployments.
Related Skills
quantum-network-routing — entanglement routing decisions informed by performance metrics
quantum-network-task-control — control plane for quantum network operations
distributed-quantum-computing — distributed quantum computing infrastructure