Epistemology and Probability Bohr, Heisenberg, Schrd̲inger, and the Nature of Quantum-Theoretical Thinking /

Quantum mechanics, discovered by Werner Heisenberg and Erwin Schrd̲inger in 1925-1926, is famous for its radical implications for our conception of physics and for our view of human knowledge in general. While these implications have been seen as scientifically productive and intellectually liberati...

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Bibliographic Details
Main Author: Plotnitsky, Arkady. (Author)
Corporate Author: SpringerLink (Online service)
Format: Electronic
Language:English
Published: New York, NY : Springer New York, 2010.
Edition:First.
Series:Fundamental Theories of Physics ; 161
Subjects:
Online Access:https://ezaccess.library.uitm.edu.my/login?url=http://dx.doi.org/10.1007/978-0-387-85334-5
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505 0 # |a Preface -- Introduction: Epistemology and Probability in Quantum Theory: Physics, Mathematics, and Philosophy -- Quantum Phenomena and the Double-Slit Experiment -- Heisenberg<U+0019>s Revolutions: New Kinematics, New Mathematics, and New Philosophy -- From Geometry to Algebra in Physics, with Heisenberg -- Schrd̲inger<U+0019>s waves: Propagation and Probability -- Bohr<U+0019>s Como Argument: Complementarity and the Problem of Causality -- From Como to Copenhagen: Renunciations -- Can Quantum-Mechanical Description of Physical Reality Be Considered Both Complete and Local? -- Essential Ambiguity and Essential Influence: Reading Bohr<U+0019>s Reply to EPR -- Mysteries without Mysticism, Correlations without Correlata, Epistemology without Ontology, and Probability without Causality -- Conclusion: "The Mere Touch of Cold Philosophy". 
520 # # |a Quantum mechanics, discovered by Werner Heisenberg and Erwin Schrd̲inger in 1925-1926, is famous for its radical implications for our conception of physics and for our view of human knowledge in general. While these implications have been seen as scientifically productive and intellectually liberating to some, Niels Bohr and Heisenberg, among them, they have been troublesome to many others, including Schrd̲inger and, most famously, Albert Einstein. The situation led to the intense debate that started in the wake of its discovery and has continued into our own time, with no end appearing to be in sight. Epistemology and Probability aims to contribute to our understanding of quantum mechanics and of the reasons for its extraordinary impact by reconsidering, under the rubric of "nonclassical epistemology," the nature of epistemology and probability, and their relationships in quantum theory. The book brings together the thought of the three figures most responsible for the rise of quantum mechanics<U+0014>Heisenberg and Schrd̲inger, on the physical side, and Bohr, on the philosophical side<U+0014>in order to develop a deeper sense of the physical, mathematical, and philosophical workings of quantum-theoretical thinking. Reciprocally, giving a special emphasis on probability and specifically to the Bayesian concept of probability allows the book to gain new insights into the thought of these figures. The book reconsiders, from this perspective, the Bohr-Einstein debate on the epistemology of quantum physics and, in particular, offers a new treatment of the famous experiment of Einstein, Podolsky, and Rosen (EPR), and of the Bohr-Einstein exchange concerning the subject. It also addresses the relevant aspects of quantum information theory and considers the implications of its epistemological argument for higher-level quantum theories, such as quantum field theory and string and brane theories. One of the main contributions of the book is its analysis of the role of mathematics in quantum theory and in the thinking of Bohr, Heisenberg, and Schrd̲inger, in particular an examination of the new (vis--̉vis classical physics and relativity) type of the relationships between mathematics and physics introduced by Heisenberg in the course of his discovery of quantum mechanics. Although Epistemology and Probability is aimed at physicists, philosophers and historians of science, and graduate and advanced undergraduate students in these fields, it is also written with a broader audience in mind and is accessible to readers unfamiliar with the higher-level mathematics used in quantum theory. 
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