A robust W-state encoding for linear quantum optics
Madhav Krishnan Vijayan, Austin P. Lund, Peter P. Rohde

TL;DR
This paper introduces a passive, W-state based error detection method for photonic quantum systems that suppresses dephasing noise using simple optical networks, compatible with near-term linear optical architectures.
Contribution
It presents a novel, passive W-state encoding technique for error detection in photonic quantum information processing, compatible with linear optics models.
Findings
W-state encoding suppresses dephasing noise via fan-out optical networks
The protocol maps noise into heralding failures with zero failure probability in ideal conditions
Compatible with current photonic quantum architectures
Abstract
Error-detection and correction are necessary prerequisites for any scalable quantum computing architecture. Given the inevitability of unwanted physical noise in quantum systems and the propensity for errors to spread as computations proceed, computational outcomes can become substantially corrupted. This observation applies regardless of the choice of physical implementation. In the context of photonic quantum information processing, there has recently been much interest in passive linear optics quantum computing, which includes boson-sampling, as this model eliminates the highly-challenging requirements for feed-forward via fast, active control. That is, these systems are passive by definition. In usual scenarios, error detection and correction techniques are inherently active, making them incompatible with this model, arousing suspicion that physical error processes may be an…
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