2017
DOI: 10.22606/tp.2017.23002
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On the Arrow of Time

Abstract: The interface between classical physics and quantum physics is explained from the point of view of Quantum Information Theory (Feynman Processes). The interpretation depends on a hefty sacrifice: the classical determinism or the arrow of time. The wave-particle duality steams from the qubit model, as the root of creation and annihilation of possibilities. A few key experiments are briefly reviewed from the above perspective: quantum erasure, delayed-choice and wave-particle correlation.

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Cited by 3 publications
(5 citation statements)
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“…in laser experiments. To see the huge conceptual difference between "strong measurements" and "weak measurements", as for example those in Quantum Optics, see (start with) [14], and ponder on delayed choice experiments too, besides the "old" Aharonov-Bohm experiment 10 . Briefly, a holistic approach is needed (see also [15] [16]), where quantum information is processed by an I/O-Circuit, and where "time" can be defined for the classical computation "controlling" it, but not locally (anti-particles are just feedback loops).…”
Section: Particle-wave Duality and Quantum Computing Networkmentioning
confidence: 99%
“…in laser experiments. To see the huge conceptual difference between "strong measurements" and "weak measurements", as for example those in Quantum Optics, see (start with) [14], and ponder on delayed choice experiments too, besides the "old" Aharonov-Bohm experiment 10 . Briefly, a holistic approach is needed (see also [15] [16]), where quantum information is processed by an I/O-Circuit, and where "time" can be defined for the classical computation "controlling" it, but not locally (anti-particles are just feedback loops).…”
Section: Particle-wave Duality and Quantum Computing Networkmentioning
confidence: 99%
“…Splitting the extension yields a double cover and e = ± √ hc; in the deformed case, the chirality should be included. The corresponding covering map should be responsible for the "average" yielding the fine structure constant, essentially a zeta value [24] combined with a Casimir element/ central charge α = e 2 /hc ↔ "137 ′′ h = Det(Q) h, Det(Q) = e + e − .…”
Section: Dirac's Equationmentioning
confidence: 99%
“…The Category with Duality and CPT. The category with duality corresponding to the quantum group implements mathematically the Charge-Parity-Time Theorem, as mentioned in [24]. The twist / braiding which breaks the charge-conjugation symmetry also corresponds to the chirality of the "gauge group", i.e.…”
Section: Acknowledgmentsmentioning
confidence: 99%
“…The particle-wave duality is also essential in the quantum information theory, Journal of Modern Physics where the unit of information is given by the quantum bit (qubit) coined by Schumacher [18], which exhibits the aspects of particle localization (counting) and wave interference to represent a signal with high fidelity [19]. Such two-state quantum system can be represented by the superposition principle:…”
Section: Introductionmentioning
confidence: 99%
“…where z 1 and z 2 are complex numbers, and 2 2 1 2 1 z z + = [19]. However, the quantum information aspect cannot be a main topic of this limited contribution.…”
Section: Introductionmentioning
confidence: 99%