A way of reading a quantum sensor that never goes blind and needs no feedback lock, so it keeps measuring when the platform moves.
It measures at three fixed phase offsets, 0°, 120° and 240°, and combines them. It needs no feedback loop and no real-time adjustment, and it recovers the sign of the signal over the full range.
In an interferometer the signal is a fringe, cos φ, where φ is the phase that gravity, a magnetic field or a frequency writes onto the atoms or spins. A standard readout looks at the fringe at one phase. Its sensitivity follows sin²φ, which falls to 0 twice per fringe. These blind regions are the dead zones.
Motion, vibration, turning and changing gravity sweep the phase across the fringe, so a standard readout keeps passing through its dead zones.
The usual fix is a feedback lock that holds the operating point on the slope. A lock that holds on a bench can lose the fringe on a moving platform.
Bayesian adaptive methods also work, but they need real-time computation and control of the measurement settings.
Phase Multiplexing for Non-Adaptive Dead-Spot Suppression in GHZ Parity Metrology
Manan Jain, 2026, Zenodo doi:10.5281/zenodo.21390434
2.3 %peak to peak: three GHZ probes at 0, 2π/3 and 4π/3 give a combined sensitivity uniform to within this, with no feedback or Bayesian update.
11.5 %of the phase range: where a single probe falls close to zero.
The sign of the signal was recovered. A feedback lock would see 19 rad of vibration per shot, against a limit of about 2 rad.
Navigation. At the quantum limit, navigation improved by 11–20 % (median).
The first hardware test runs on an NV-diamond testbed. Its pass bars are fixed in advance: