Quantum Theory of Motion - An Account of the de Broglie-Bohm Causal Interpretation of Quantum Mechanics. Peter R. Holland

Quantum Theory of Motion - An Account of the de Broglie-Bohm Causal Interpretation of Quantum Mechanics


Quantum.Theory.of.Motion.An.Account.of.the.de.Broglie.Bohm.Causal.Interpretation.of.Quantum.Mechanics.pdf
ISBN: 0521485436, | 560 pages | 14 Mb


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Quantum Theory of Motion - An Account of the de Broglie-Bohm Causal Interpretation of Quantum Mechanics Peter R. Holland
Publisher: Cambridge University Press




The Bohm/Bohr weren't so wrong, as you're trying to present them here. The de Broglie-Bohm interpretation is a trivial counter-example to your assertion which has been known for over 50 years, so you're either ignorant, dishonest and intentionally deceiving people, or simply an idiot. Abraham, "Two-Dimensional Time-Dependent Quantum-Mechanical Scattering Event," American Journal of Physics, 52(1), 1984 pp. None of these concepts and adjectives exist in physics; the most general interpretation compatible with quantum mechanics would be that \(\lambda\) is a mixed state combining pure states \(|0\rangle\) and \(|{+}\rangle\) with coefficients ( probabilities) that .. De Broglie, in which the quantum wave generates an effective potential (a sum of obstacle and quantum potentials) that the particles follow. The Quantum Theory of Motion: an account of the de Broglie-Bohm Causal Interpretation of Quantum Mechanics, Peter R. Holland, Cambridge: Cambridge University Press. 'Interpretation of quantum mechanics by the double solution theory – Louis de BROGLIE' The aether waves exiting the slits interact with the detectors and become many short waves with irregular motion. The initial quantum wave starts [3] I. The formalism of the quantum motion is derived from the causal interpretation of D. Most physicist partake in philosophy of physics, a well establish field by now, as is in any case clear in the historical development of qm, especially wrt interpretations. Now, from the perspective of another observer, the above observer is actually moving in space, thus according to this 2nd observer, his spatial motion takes away from his "time motion", leaving the interval the same. It's no wonder that quantum mechanics has a number of different interpretations behind it: we're trying to understand reality, and yet the things that we're observing are completely unlike what we experience as reality!

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