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Wave Function of the Universe
Wave Function of the Universe

The Canonical Approach to Quantum Gravity
The Canonical Approach to Quantum Gravity

QUANTUM ENTANGLEMENT STATE OF NON
QUANTUM ENTANGLEMENT STATE OF NON

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wavefunction (63) obtained by applying Dirac`s factor
wavefunction (63) obtained by applying Dirac`s factor

Quantum Scholasticism: On Quantum Contexts, Counterfactuals
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Quantum Coins, Dice and Children: Probability and Quantum Statistics

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The Universe`s Acceleration Must Stop If Life Is to Survive Forever
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Permission to make digital or hard copies of all or part of this work
Permission to make digital or hard copies of all or part of this work

... of the end of the 19th century. We shall then describe the deep conceptual crisis this program went through at the beginning of the 20th century, and then explain the very profound transformations of the conceptual basis of physics called for by this crisis and validated by the successes of the stan ...
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... The quantum mechanical rules in the last section were written down in the previous section under the assumption that all particles are distinguishable. For most realistic n-body systems, however, this is an unphysical assumption. For example, there is no way of distinguishing the electrons in an ato ...
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Analysis of the wave packet interference pattern in the Young experiment K. C

... There are two possible ways of evolution of the quantum state of a system, which is completely predictable and reversible, called unitary evolution, as well as the irreversible rapid process connected with measurements [1]. There have been a few attempts of bringing these two possible ways of evolut ...
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Light and Photons - Continuum Center

... The insanely weird quantum wave function might be “real ... arstechnica.com/.../the-insanely-weird-quantum-wave-function-might... Nov 21, 2011 · The insanely weird quantum wave function might be “real” after all ... These each prepare single photons and send them to detectors for joint detection: “Q ...
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Canonical quantization

In physics, canonical quantization is a procedure for quantizing a classical theory, while attempting to preserve the formal structure, such as symmetries, of the classical theory, to the greatest extent possible.Historically, this was not quite Werner Heisenberg's route to obtaining quantum mechanics, but Paul Dirac introduced it in his 1926 doctoral thesis, the ""method of classical analogy"" for quantization, and detailed it in his classic text. The word canonical arises from the Hamiltonian approach to classical mechanics, in which a system's dynamics is generated via canonical Poisson brackets, a structure which is only partially preserved in canonical quantization.This method was further used in the context of quantum field theory by Paul Dirac, in his construction of quantum electrodynamics. In the field theory context, it is also called second quantization, in contrast to the semi-classical first quantization for single particles.
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