Is a system's wave function in one-to-one correspondence with its elements of reality?
arXiv:1111.6597 · doi:10.1103/PhysRevLett.108.150402
Abstract
Although quantum mechanics is one of our most successful physical theories, there has been a long-standing debate about the interpretation of the wave function---the central object of the theory. Two prominent views are that (i) it corresponds to an element of reality, i.e. an objective attribute that exists before measurement, and (ii) it is a subjective state of knowledge about some underlying reality. A recent result [Pusey et al. arXiv:1111.3328] has placed the subjective interpretation into doubt, showing that it would contradict certain physically plausible assumptions, in particular that multiple systems can be prepared such that their elements of reality are uncorrelated. Here we show, based only on the assumption that measurement settings can be chosen freely, that a system's wave function is in one-to-one correspondence with its elements of reality. This also eliminates the possibility that it can be interpreted subjectively.
4 pages plus 2 of appendix
References in corpus (8)
- In defense of the epistemic view of quantum states: a toy theory
- Quantum probabilities as Bayesian probabilities
- Einstein, incompleteness, and the epistemic view of quantum states
- Towards a Formulation of Quantum Theory as a Causally Neutral Theory of Bayesian Inference
- No extension of quantum theory can have improved predictive power
- State space dimensionality in short memory hidden variable theories
- Various quantum nonlocality tests with a simple 2-photon entanglement source
- Measurement contextuality is implied by macroscopic realism
Cited by in corpus (94)
- An Introduction to QBism with an Application to the Locality of Quantum Mechanics
- How Quantum Mechanics can consistently describe the use of itself
- Quantum theory cannot consistently describe the use of itself
- Is the quantum state real? An extended review of -ontology theorems
- Certified randomness in quantum physics
- Quantum from principles
- Quasi-quantization: classical statistical theories with an epistemic restriction
- Introduction to the book "Quantum Theory: Informational Foundations and Foils"
- The completeness of quantum theory for predicting measurement outcomes
- Are quantum states real?
- Distinct Quantum States Can Be Compatible with a Single State of Reality
- Measurements on the reality of the wavefunction
- No -epistemic model can fully explain the indistinguishability of quantum states
- QBism and the Greeks: why a quantum state does not represent an element of physical reality
- Is a time symmetric interpretation of quantum theory possible without retrocausality?
- Observing Dirac's classical phase space analog to the quantum state
- Respecting One's Fellow: QBism's Analysis of Wigner's Friend
- Maximally epistemic interpretations of the quantum state and contextuality
- A system's wave function is uniquely determined by its underlying physical state
- How ψ-epistemic models fail at explaining the indistinguishability of quantum states
- Quantum Theory and Determinism
- Can different quantum state vectors correspond to the same physical state? An experimental test
- Direct measurement of a nonlocal entangled quantum state
- A measure of physical reality
- -epistemic models are exponentially bad at explaining the distinguishability of quantum states
- No Return to Classical Reality
- Operational quantum theory without predefined time
- Quantum Advantage from Sequential-Transformation Contextuality
- Information-reality complementarity: The role of measurements and quantum reference frames
- The New Quantum Logic
- The Meaning of the Wave Function: In Search of the Ontology of Quantum Mechanics
- No-go theorem for the composition of quantum systems
- Direct Measurement of the Two-dimensional Spatial Quantum Wavefunction via Strong Measurements
- Epistemic view of quantum states and communication complexity of quantum channels
- A Quantum Paradox of Choice: More Freedom Makes Summoning a Quantum State Harder
- Could wavefunctions simultaneously represent knowledge and reality?
- Bananaworld: Quantum Mechanics for Primates
- Realism-information complementarity in photonic weak measurements
- Reality of the quantum state: Towards a stronger ψ-ontology theorem
- Beable-Guided Quantum Theories: Generalising Quantum Probability Laws
- A Process Model of Quantum Mechanics
- Nonlocal quantum information transfer without superluminal signalling and communication
- Communication complexity and the reality of the wave-function
- Quantifying continuous-variable realism
- How to account for quantum non-locality: ontic structural realism and the primitive ontology of quantum physics
- Onthological models predictively inequivalent to quantum theory
- Exactly solving the Kitaev chain and generating Majorana-zero-modes out of noisy qubits
- Alternative Experimental Protocol for a PBR-Like Result
- A short note on the concept of free choice
- Lack of measurement independence can simulate quantum correlation even when signaling cannot
- On the reality of the quantum state once again: A no-go theorem for -ontic models
- A representation of the wave function on the three-dimensional space
- Necessary and sufficient optimality conditions for classical simulations of quantum communication processes
- Ontological Models in Quantum Mechanics: What do they tell us?
- Determinism, independence and objectivity are incompatible
- An impossibility theorem for Parameter Independent hidden variable theories
- Exponential communication gap between weak and strong classical simulations of quantum communication
- Towards optimal experimental tests on the reality of the quantum state
- Shut up and let me think. Or why you should work on the foundations of quantum mechanics as much as you please
- Quantum Correlations and the Measurement Problem
- The post-determined block universe
- Extending quantum mechanics entails extending special relativity
- Why protective measurement does not establish the reality of the quantum state
- An argument for psi-ontology in terms of protective measurements
- A nonlocal ontology underlying the time-symmetric Heisenberg representation
- Decision at the beam-splitter, or decision at detection, that is the question
- Protective Measurements and the Reality of the Wave Function
- On the Colbeck-Renner Theorem
- Is a description deeper than the quantum one possible?
- Simpler proof of the theorem by Pusey, Barrett, and Rudolph on the reality of the quantum state
- Bell's Theorem, Accountability and Nonlocality
- Quasiprobability distributions with weak measurements
- On the 'Reality' of Observable Properties
- Deciphering the Enigma of Wave-Particle Duality
- On Relativistic Entanglement and Localization of Particles and on their Comparison with the Non-Relativistic Theory
- Might quantum-induced deviations from the Einstein equations detectably affect gravitational wave propagation?
- Quantum Objective Realism
- Completely real? A critical note on the claims by Colbeck and Renner
- Witnessing Bell violations through probabilistic negativity
- Reciprocal ontological models show indeterminism of the order of quantum theory
- Fleeting Critical Review of the Recent Ontic Breakthrough in Quantum Mechanics
- How fast is the wave function collapse?
- On the completeness of quantum mechanics and the interpretation of the state vector
- Bell Nonlocality and the Reality of Quantum Wavefunction
- Is the Quantum State Real in the Hilbert Space Formulation?
- Reality, Causality, and Quantum Theory
- Reflections on the PBR Theorem: Reality Criteria & Preparation Independence
- Failure of epistemic models to explain the antidistinguishability of quantum mixed preparations
- Can the ontology of Bohmian mechanics consists only in particles? The PBR theorem says no
- A no-go result for QBism
- On the Nature of Reality
- Quantum Thermodynamics Allows Quantum Measurement Almost Without Collapse
- Indeterminate Probabilities and the Weak Quantum Law of Large Numbers
- Can category-theoretic semantics resolve the problem of the interpretation of the quantum state vector?