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Knowledge-based signal analysis and case-based condition monitoring of a machine tool

  • LAAS CNRS
  • Polytechnic University of Catalonia
  • LIBA/IT Tecnológico

Producción científica: Contribución a una conferenciaArtículorevisión exhaustiva

5 Citas (Scopus)

Resumen

This paper describes an innovative methodology for knowledge-based signal analysis and interpretation. The force sensors introduced in a rotative machine-tool are used for the monitoring and supervision of the functional state of the tool and the possible faults in the environment, as lubrication, correct speed,... The monitoring turning processes gets the torque data from the force measurement directly for the main spindles and feed axes given by a piezo-electric sensors, they are analysed having in mind the knowledge of the experts about the semantically weighted patterns in order to monitor the operating conditions of the machine-tool. The proposed system consists on 2 parts: 1. ABSALON: (ABStraction AnaLysis ON-line), 2. LAMDA (Learning Algorithm for Multivariable Data Analysis) The first one is an "abstraction" or transformation of the signal into features to be interpreted, this is done by the sliding windows methodology; the second is performed by a fuzzy classifier, including a learning procedure from cases defined by expert knowledge: ABSALON transforms the raw signal into a vector whose components are meaningful features to be classified by LAMDA. Industrial experimental results are shown in the paper.

Idioma originalInglés
Páginas286-291
Número de páginas6
EstadoPublicada - 2001
Publicado de forma externa
EventoJoint 9th IFSA World Congress and 20th NAFIPS International Conference - Vancouver, BC, Canadá
Duración: 25 jul 200128 jul 2001

Conferencia

ConferenciaJoint 9th IFSA World Congress and 20th NAFIPS International Conference
País/TerritorioCanadá
CiudadVancouver, BC
Período25/07/0128/07/01

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