DocumentCode :
1750937
Title :
Learning user models for an intelligent telephone assistant
Author :
Martin, T.P. ; Azvine, B.
Author_Institution :
BT Intelligent Systems Research Lab, Ipswich, UK
Volume :
2
fYear :
2001
fDate :
25-28 July 2001
Firstpage :
669
Abstract :
User modelling is becoming ubiquitous in new "information appliances" and services. Mobile phones routinely include features such as predictive text input and voice recognition, tailored to a specific user. It is likely that, as with other AI technologies, user modelling will gradually become part of mainstream computing and products. The paper outlines a novel approach to user modelling by means of prototypes, implemented as support logic programs which exhibit typical behaviour. The user model is expressed as a dynamic distribution of supports over this set of prototypes. The new approach has been tested on a model application, the n-player iterated prisoner\´s dilemma, and on a telephone assistant system. Prediction success rates of over 80% have been achieved using simple prototypes, although further investigation is required to confirm the validity of this approach in the telephone assistant
Keywords :
computer telephony integration; learning (artificial intelligence); logic programming; user modelling; AI technologies; dynamic distribution; information appliances; intelligent telephone assistant; learning user models; mainstream computing; mobile phones; model application; n-player iterated prisoner dilemma; prediction success rates; predictive text input; support logic programs; telephone assistant system; typical behaviour; user modelling; voice recognition; Artificial intelligence; Home appliances; Logic; Mobile handsets; Pervasive computing; Prototypes; Speech recognition; System testing; Telephony; Text recognition;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
IFSA World Congress and 20th NAFIPS International Conference, 2001. Joint 9th
Conference_Location :
Vancouver, BC
Print_ISBN :
0-7803-7078-3
Type :
conf
DOI :
10.1109/NAFIPS.2001.944682
Filename :
944682
Link To Document :
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