Abstract

Review of the irreversibility problem in modern physics with new researches is given. Some characteristics of the Markov chains are specified and the important property of monotonicity of a probability is formulated. Using one thin inequality, the behavior of relative entropy in the classical case is considered. Further we pass to studying of the irreversibility phenomena in quantum problems. By new method is received the Lindblad’s equation and its physical essence is explained. Deep analogy between the classical Markov processes and development described by the Lindblad’s equation is conducted. Using method of comparison of the Lind-blad’s equation with the linear Langevin equation we receive a system of differential equations, which are more general, than the Caldeira-Leggett equation. Here we consider quantum systems without inverse influ-ence on a surrounding background with high temperature. Quantum diffusion of a single particle is consid-ered and possible ways of the permission of the Schrödinger’s cat paradox and the role of an external world for the phenomena with quantum irreversibility are discussed. In spite of previous opinion we conclude that in the equilibrium environment is not necessary to postulate the processes with collapses of wave functions. Besides, we draw attention to the fact that the Heisenberg’s uncertainty relation does not always mean the restriction is usually the product of the average values of commuting variables. At last, some prospects in the problem of quantum irreversibility are discussed.

Highlights

  • The concept of irreversible changes in physics is manifold

  • In spite of previous opinion we conclude that in the equilibrium environment is not necessary to postulate the processes with collapses of wave functions

  • It means a tendency to thermodynamic balance, but the irreversibility problem isn’t settled by it

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Summary

Introduction

The concept of irreversible changes in physics is manifold. First of all, it means a tendency to thermodynamic balance, but the irreversibility problem isn’t settled by it. In modern physics the important role plays an irreversible mixing (or collapses of wave functions) of quantum measurements results. Some questions about dissipative quantum systems were considered in [1]. Further we pass to studying of the irreversibility phenomena in quantum problems. In the same place a deep analogy between the classical Markov processes and development described by the Lindblad equation is given. The role of an external world for the phenomena with quantum irreversibility is considered. In Section we discuss some prospects in the problem of quantum irreversibility

Some New Remarks on the Markov Processes
The Relative Entropy in Classical Problems
Irreversibility in the Quantum Case
Generalization of the Caldeira-Leggett Equation
Re we obtain following equations df dt v2
The Systems without Feedback
The Quantum Diffusion of Free Particle
About Paths of Solution of the Schrödinger’s Cat Paradox
The Cosmic Factors
11. The Systems with Large Dispersion
12. Prospects
13. Conclusions
14. References
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