Markovian and non-Markovian quantum measurements
arXiv:1701.05636 · doi:10.1007/s10701-020-00362-4
Abstract
Consecutive measurements performed on the same quantum system can reveal fundamental insights into quantum theory's causal structure, and probe different aspects of the quantum measurement problem. According to the Copenhagen interpretation, measurements affect the quantum system in such a way that the quantum superposition collapses after the measurement, erasing any knowledge of the prior state. We show here that counter to this view, unamplified measurements (measurements where all variables comprising a pointer are controllable) have coherent ancilla density matrices that encode the memory of the entire set of quantum measurements, and that the quantum chain of a set of consecutive unamplified measurements is non-Markovian. In contrast, sequences of amplified measurements (measurements where at least one pointer variable has been lost) are equivalent to a quantum Markov chain. An analysis of arbitrary non-Markovian quantum chains of measurements reveals that all of the information necessary to reconstruct the chain is encoded on its boundary (the state preparation and the final measurement), reminiscent of the holographic principle.
23 pages, 15 figures
References in corpus (6)
- Structure of states which satisfy strong subadditivity of quantum entropy with equality
- Undoing a weak quantum measurement of a solid-state qubit
- The Leggett-Garg inequality in electron interferometers
- An experimental investigation of measurement-induced disturbance and time symmetry in quantum physics
- Quantum information theory of the Bell-state quantum eraser
- Retrodiction of a sequence of measurement results in qubit interferometers
Cited by in corpus (5)
- Dissipative dynamics of quantum correlation quantifiers under decoherence channels
- Unitary evolution and elements of reality in consecutive quantum measurements
- Neither weak nor strong entropic Leggett-Garg inequalities can be violated
- Leggett-Garg inequalities cannot be violated in quantum measurements
- On the Origin of Quantum Uncertainty