Efficient Parity Encoded Optical Quantum Computing
arXiv:quant-ph/0505125 · doi:10.1103/PhysRevA.75.052328
Abstract
We present a linear optics quantum computation scheme with a greatly reduced cost in resources compared to KLM. The scheme makes use of elements from cluster state computation and achieves comparable resource usage to those schemes while retaining the circuit based approach of KLM.
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- Multi-photon entanglement and interferometry
- Optical Quantum Computing
- Photonic quantum information processing: a concise review
- Experimental quantum coding against photon loss error
- Optical Quantum Computation
- Hardware-Efficient Bosonic Quantum Error-Correcting Codes Based on Symmetry Operators
- Fault Tolerance in Parity-State Linear Optical Quantum Computing
- Minimal resources for linear optical one-way computing
- A photon loss tolerant Zeno CSIGN gate
- Nearly deterministic Bell measurement with multiphoton entanglement for efficient quantum information processing
- Tailored cluster states with high threshold under biased noise
- Tailoring fusion-based error correction for high thresholds to biased fusion failures
- Linear optical quantum computation with imperfect entangled photon-pair sources and inefficient non-photon-number-resolving detectors
- Integration of highly probabilistic sources into optical quantum architectures: perpetual quantum computation
- Efficient quantum computation in a network with probabilistic gates and logical encoding
- Loss-tolerant operations in parity-code linear optics quantum computing
- Entangling photons via the double quantum Zeno effect
- Proposal for optical parity state re-encoder
- Deterministic linear-optical computing with symmetry-based qubits