| name | amplitude-encoded-quantum-reservoir-protocol |
| description | Online quantum reservoir computing protocol with amplitude encoding using mid-circuit measurement and reset - enables scalable hardware implementations without input buffering |
| arxiv_id | 2606.18991 |
| authors | Giacomo Franceschetto, Pere Mujal, Rodrigo Martínez-Peña |
| published | 2026-06-17 |
| categories | quant-ph |
| trigger_words | ["amplitude encoding quantum reservoir","mid-circuit measurement reset","quantum reservoir online protocol","partial-trace quantum dynamics","indirect measurement quantum reservoir","online quantum processing"] |
| created | 2026-07-06 |
| source | cron-hourly-research |
Amplitude-Encoded Quantum Reservoir Protocol
Overview
Introduces a quantum reservoir computing online protocol that realizes amplitude encoding on quantum hardware using mid-circuit measurement and reset operations. Preserves online operation, avoids input buffering, and keeps runtime linear in time steps.
Core Findings
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Mid-Circuit Measurement + Reset: Combines these operations to implement partial-trace dynamics underlying amplitude encoding on real quantum hardware.
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Indirect Measurement Scheme: Provides access to reservoir observables without interrupting temporal processing.
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Online Operation Preserved: Unlike other approaches, this method avoids input buffering and maintains linear runtime in number of time steps.
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Dual Monitoring: Reservoir dynamics can be monitored through both direct measurements of input qubits and indirect measurements of memory qubits — enabling full system observation while isolating internal reservoir evolution.
Methodology
- Use mid-circuit measurement and reset for partial-trace dynamics
- Implement indirect measurement scheme for continuous monitoring
- Validate on standard benchmark tasks
- Evaluate on real quantum hardware
Design Principles
- Use mid-circuit measurement+reset instead of full circuit execution for amplitude encoding
- Separate input qubit monitoring from memory qubit monitoring for isolation
- Keep runtime linear in time steps by avoiding input buffering
- Protocol provides practical route toward scalable hardware implementations
Activation
Use when: amplitude encoding for quantum reservoir computing, mid-circuit measurement protocols, online quantum temporal processing, quantum reservoir hardware implementation, partial-trace quantum dynamics