DocumentCode :
152793
Title :
Diagnosis of action execution failures for cognitive robots
Author :
Altan, Dogan ; Sariel, Sanem
Author_Institution :
Yapay Zeka ve Robotik Laboratuvan, Istanbul Teknik Univ., Istanbul, Turkey
fYear :
2014
fDate :
23-25 April 2014
Firstpage :
1559
Lastpage :
1562
Abstract :
Execution failures are likely in robotic applications due to dynamic and partially observable structure of the physical world. These failures should be detected by the robot, and a reasoning procedure should take place to diagnose the causes of the failures. In this paper, we propose a Hierarchical Hidden Markov Model (HHMM) based failure diagnosis method to identify the cause of a failure. Parallel HHMMs are used in the proposed method in order to track different type of failures. The performance of the proposed method is evaluated on our Pioneer 3-AT robot in several failure scenarios. The results reveal that using a probabilistic method ensures diagnosing multiple failures when there are more than one cause of a failure. Furthermore, using relations between the failure types and actions decreases memory requirements of the method by reducing the state space.
Keywords :
hidden Markov models; intelligent robots; mobile robots; probability; Pioneer 3-AT robot; action execution failure diagnosis; cognitive robots; dynamic partially observable structure; failure scenarios; failure tracking; failure types; hierarchical hidden Markov model; memory requirement reduction; mobile robot; parallel HHMM-based failure diagnosis method; performance evaluation; physical world; probabilistic method; reasoning procedure; robotic applications; state space reduction; Conferences; Hidden Markov models; Markov processes; Probabilistic logic; Robots; Signal processing; Viterbi algorithm; Failure Isolation for Robots; Hierarchical Hidden Markov Model; Model-Based Diagnosis;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Signal Processing and Communications Applications Conference (SIU), 2014 22nd
Conference_Location :
Trabzon
Type :
conf
DOI :
10.1109/SIU.2014.6830540
Filename :
6830540
Link To Document :
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