On Quantum Theory
arXiv:1308.5290 · doi:10.1140/epjd/e2013-40486-5
Abstract
Quantum theory is a well-defined local theory with a clear interpretation. No "measurement problem" or any other foundational matters are waiting to be settled.
16 pages, 3 figures; the second version has some references updated and a few typos corrected
References in corpus (2)
Cited by in corpus (30)
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- Notwithstanding Bohr, the Reasons for QBism
- Action principle for cellular automata and the linearity of quantum mechanics
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- What makes quantum clicks special?
- Markovian and non-Markovian quantum measurements
- Why I am not a QBist
- Wave-particle Duality in Complex Quantum Systems
- First-principles construction of symmetry-informed quantum metrologies
- Mathematical and physical meaning of the Bell inequalities
- Causal non-locality can arise from constrained replication
- Shut up and let me think. Or why you should work on the foundations of quantum mechanics as much as you please
- The linearity of quantum mechanics from the perspective of Hamiltonian cellular automata
- Discrete-event simulation of uncertainty in single-neutron experiments
- On the measurement problem with entangled photons and the possibility of local hidden variables
- Bell's Theorem, Accountability and Nonlocality
- A subquantum arrow of time
- Linear superposition as a core theorem of quantum empiricism
- Event-by-event simulation of a quantum delayed-choice experiment
- The conception of reality in Quantum Mechanics
- Non-asymptotic quantum metrology
- The Copenhagen Interpretation Born Again
- Relative-belief inference in quantum information theory
- Born's rule and measurement
- Quantum advantage by relational queries about physically realizable equivalence classes
- S-matrix interpretation in categorical quantum mechanics
- Attempt at Perfecting Non-Relativistic Quantum Mechanics Based on Interaction
- Complementarity has empirically relevant consequences for the definition of quantum states
- From Unitarity to Irreversibility: The Role of Infinite Tensor Products and Nested Wigner's Friends
- Inequality-free proof of Bell's theorem