Chaitin's Omega and an Algorithmic Phase Transition
Abstract
We consider the statistical mechanical ensemble of bit string histories that are computed by a universal Turing machine. The role of the energy is played by the program size. We show that this ensemble has a first-order phase transition at a critical temperature, at which the partition function equals Chaitin's halting probability . This phase transition has curious properties: the free energy is continuous near the critical temperature, but almost jumps: it converges more slowly to its finite critical value than any computable function. At the critical temperature, the average size of the bit strings diverges. We define a non-universal Turing machine that approximates this behavior of the partition function in a computable way by a super-logarithmic singularity, and discuss its thermodynamic properties. We also discuss analogies and differences between Chaitin's Omega and the partition functions of a quantum mechanical particle, a spin model, random surfaces, and quantum Turing machines. For universal Turing machines, we conjecture that the ensemble of bit string histories at the critical temperature has a continuum formulation in terms of a string theory.
Cite
@article{arxiv.1909.09231,
title = {Chaitin's Omega and an Algorithmic Phase Transition},
author = {Christof Schmidhuber},
journal= {arXiv preprint arXiv:1909.09231},
year = {2021}
}
Comments
29 pages, 5 figures. Added references, a literature review, and a section on analogies with quantum mechanics and field theory (previous title: "Logical Quantum Field Theory")