Published April 1981 | Version v1
Journal article

Quantum spacetime operationally based on propagators for extended test particles

  • 1. Univ of Toronto, Ontario

Description

By taking into account the quantum aspects intrinsic to any operational definition of spatio-temporal relationships, a stochastic concept of spacetime emerges. In relation to its classical counterpart is realized as a stochastic mean around which quantum fluctuations become negligible only in the limit of macroscopic spacetime intervals. The test-particle propagators used in the proposed quantum concept of spacetime are derived by solving in a consistent manner the localizability problem for relativistic particles. This is achieved in the framework of the stochastic phase space formulation of quantum mechanics, which in the nonrelativistic context is shown to result from systems of imprimitivity related to phase space conserved probability currents derivable from bona fide convariant probability densities in stochastic phase spaces of one particle systems, which can be interpreted as due to measurements performed with extended rather than pointlike test particles. The associated particle propagators can be therefore consistently related to coordinate probability densities measurable by the exchange of photons in between test particles from a chosen standard. Quantum spacetime is defined as the family of propagators corresponding to all conceivable coherent flows of test particles. This family of free-fall propagators has to satisfy certain self-consistency conditions as well as consistent laws of motion which inplicitly determine the stochastic geometro-dynamics of quantum space-time. Field theory on quantum spacetime retains many of the formal features of conventional quantum field theory. On a fundamental epistemological level stochastic geometries emerge as essential prerequisites in the construction of spacetime models that would be operationally based and yet consistent with the relativity principle as well as with the uncertinty principle

Additional details

Publishing Information

Journal Title
Hadronic J.
Journal Volume
4
Journal Issue
3
Series
Hadronic J.
Journal Page Range
1018-1104
ISSN
0162-5519

Conference

Title
3. workshop on Lie-admissible formulations.
Dates
4 - 9 Aug 1980.
Place
Boston, MA (USA).

INIS

Country of Publication
United States
Country of Input or Organization
United States
INIS RN
14743599
Subject category
S71: CLASSICAL AND QUANTUM MECHANICS, GENERAL PHYSICS;
Resource subtype / Literary indicator
Conference
Descriptors DEI
PROPAGATOR; QUANTUM FIELD THEORY; QUANTUM MECHANICS; SPACE-TIME; STOCHASTIC PROCESSES; UNCERTAINTY PRINCIPLE
Descriptors DEC
FIELD THEORIES; MECHANICS

Optional Information

Secondary number(s)
CONF-8008162--.