HR: 0830h
AN: NG11A-0176 [PDF]
TI: The Extended Concept Of Symmetropy And Its Application To Earthquakes And Acoustic Emissions
AU: * Nanjo, K
EM: nanjo@ism.ac.jp
AF: The Institute of Statistical Mathematics, Minato-ku, Tokyo, 106-8569
Japan
AU: Yodogawa, E
EM: yodogawa@ee.kogakuin.ac.jp
AF: Department of Computer Science and Communication Engineering, Kogakuin University, Shinjuku-ku, Tokyo,
163-8677
Japan
AB:
There is the notion of symmetropy that can be considered as a powerful tool to measure quantitatively entropic heterogeneity
regarding symmetry of a pattern. It can be regarded as a quantitative measure to extract the feature of asymmetry of a
pattern (Yodogawa, 1982; Nanjo et al., 2000, 2001, 2002 in press). In previous studies, symmetropy was estimated for the
spatial distributions of acoustic emissions generated before the ultimate whole fracture of a rock specimen in the laboratory
experiment and for the spatial distributions of earthquakes in the seismic source model with self-organized criticality
(SOC). In each of these estimations, the outline of the region in which symmetropy is estimated for a pattern is determined
to be equal to that of the rock specimen in which acoustic emissions are generated or that of the SOC seismic source model
from which earthquakes emerge. When local seismicities like aftershocks, foreshocks and earthquake swarms in the Earth's
crust are considered, it is difficult to determine objectively the outline of the region characterizing these local
seismicities without the need of subjectiveness. So, the original concept of symmetropy is not appropriate to be directly
applied to such local seismicities and the proper modification of the original one is needed. Here, we introduce the notion
of symmetropy for the nonlinear geosciences and extend it for the purpose of the application to local seismicities such as
aftershocks, foreshocks and earthquake swarms. We employ the extended concept to the spatial distributions of acoustic
emissions generated in a previous laboratory experiment where the failure process in a brittle granite sample can be
stabilized by controlling axial stress to maintain a constant rate of acoustic emissions and, as a result, detailed view of
fracture nucleation and growth was observed. Moreover, it is applied to the temporal variations of spatial distributions of
aftershocks and foreshocks of the main shocks, using natural observable data of earthquakes in and around Japan. Our results
show the successful applicability of the extended concept of symmetropy to earthquakes and acoustic emissions. Furthermore,
it is pointed out that the concept of symmetropy or the extended one of it might be adapted to any pattern recognition in
many fields of science, particularly in the nonlinear geosciences and the sciences of complexity. References: Yodogawa,
1982, Percept. Psychophys., v. 32, p. 230-240; Nanjo et al., 2000, Forma, v. 15, p. 95-101; Nanjo et al., 2001, Forma, v. 16,
p. 213-224; Nanjo et al., 2002 in press, Symmetry: Art and Science, v. 2.
DE: 7200 SEISMOLOGY
DE: 7294 Instruments and techniques
DE: 9820 Techniques applicable in three or more fields
SC: Nonlinear Geophysics [NG]
MN: 2003 Fall Meeting