Bohmian Mechanics, Open Quantum Systems and Continuous Measurements
Softcover reprint of the original 1st ed. 2017
Book Details
Format
Paperback / Softback
ISBN-10
3319852078
ISBN-13
9783319852072
Edition
Softcover reprint of the original 1st ed. 2017
Publisher
Springer International Publishing AG
Imprint
Springer International Publishing AG
Country of Manufacture
GB
Country of Publication
GB
Publication Date
Jul 21st, 2018
Print length
241 Pages
Product Classification:
Cybernetics & systems theoryCybernetics and systems theoryPhilosophy of scienceScientific standardsScientific standards, measurement etcMensuration & systems of measurementPhysicsQuantum physics (quantum mechanics & quantum field theory)Quantum physics (quantum mechanics and quantum field theory)Mathematical / Computational / Theoretical physicsMathematical physics
Ksh 19,800.00
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This book shows how Bohmian mechanics overcomes the need for a measurement postulate involving wave function collapse. The measuring process plays a very important role in quantum mechanics. Quantum stochastic trajectories (in the Bohmian sense) and their role in basic quantum processes are discussed in detail.
This book shows how Bohmian mechanics overcomes the need for a measurement postulate involving wave function collapse. The measuring process plays a very important role in quantum mechanics. It has been widely analyzed within the Copenhagen approach through the Born and von Neumann postulates, with later extension due to Lüders. In contrast, much less effort has been invested in the measurement theory within the Bohmian mechanics framework. The continuous measurement (sharp and fuzzy, or strong and weak) problem is considered here in this framework. The authors begin by generalizing the so-called Mensky approach, which is based on restricted path integral through quantum corridors. The measuring system is then considered to be an open quantum system following a stochastic Schrödinger equation. Quantum stochastic trajectories (in the Bohmian sense) and their role in basic quantum processes are discussed in detail. The decoherence process is thereby described in terms of classicaltrajectories issuing from the violation of the noncrossing rule of quantum trajectories.
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