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Tourism applications of
Artificial Intelligence techniques
   Dr. Antonio Moreno, ITAKA research group, URV
ITAKA – Basic research lines
 Multi-agent systems
 Ontology Learning
 Information Extraction
 Automated clustering
 Intelligent decision support systems
 Preference management
 Privacy protection
ITAKA – Basic research lines
 Multi-agent systems
 Ontology Learning
 Information Extraction
 Automated clustering
 Intelligent decision support systems
 Preference management
 Privacy protection
Multi-agent systems
• Distributed computer systems, in which a
  group of autonomous and proactive
  intelligent agents communicate and
  cooperate to solve a complex problem.
• Fields: Health Care and Tourism
• Work initiated within the AgentCities
  European network, 2003-05
Turist@: agent-based personalised
recommendation of cultural activities
Main features of Turist@
Main features of Turist@
• Dynamic management of user profile
Main features of Turist@
• Dynamic management of user profile
   – Initial questionnaire
Main features of Turist@
• Dynamic management of user profile
   – Initial questionnaire
   – Update after explicit evaluation
Main features of Turist@
• Dynamic management of user profile
   – Initial questionnaire
   – Update after explicit evaluation
   – Update after user query
Main features of Turist@
• Dynamic management of user profile
   – Initial questionnaire
   – Update after explicit evaluation
   – Update after user query
• Recommendation techniques
   – Content-based
   – Collaborative, based in clusters of users with similar demographic
     data
Main features of Turist@
• Dynamic management of user profile
   – Initial questionnaire
   – Update after explicit evaluation
   – Update after user query
• Recommendation techniques
   – Content-based
   – Collaborative, based in clusters of users with similar demographic
     data
• User Agents running on mobile devices
   – Pro-active and location-based recommendations
Information Extraction
Spanish research
project: DAMASK-
Data mining
algorithms with
semantic knowledge
(2010-2012)
– Support from the
  Scientific and
  Technological Park of
  Tourism and Leisure
Basic steps in DAMASK
• Ontology-based extraction of relevant data from
  structured, semi-structured and unstructured Web
  resources, obtaining an attribute-value matrix
  [touristic destinations from Wikipedia]
• Adaptation of traditional clustering methods to
  create classifications (trees and partitions) using
  semantic information
• Test the practical applicability of the developed
  methods in the area of Tourism, building a
  prototype of a decision support system [2012]
SigTur/e-Destination
• Project developed in
  cooperation with the
  Scientific and
  Technological Park for
  Tourism and Leisure
  (Vila-Seca), supported
  by European funds
• Ontology-based
  personalized
  recommendation of
  touristic activities in the
  region of Tarragona
Tourism ontology
• Comprehensive coverage of touristic activities in
  the region of Tarragona
Recommendation techniques
Recommendation techniques
• Demographic information and travel motivations
Recommendation techniques
• Demographic information and travel motivations
Recommendation techniques
• Demographic information and travel motivations
• User interaction with the system
Recommendation techniques
• Demographic information and travel motivations
• User interaction with the system
• Similarity of user with predefined frequent tourist
  stereotypes
   – British families with young children staying for two weeks
     in a cheap hotel in Salou in August
Recommendation techniques
• Demographic information and travel motivations
• User interaction with the system
• Similarity of user with predefined frequent tourist
  stereotypes
   – British families with young children staying for two weeks
     in a cheap hotel in Salou in August
• Classes of users with similar demographic data
Recommendation techniques
• Demographic information and travel motivations
• User interaction with the system
• Similarity of user with predefined frequent tourist
  stereotypes
   – British families with young children staying for two weeks
     in a cheap hotel in Salou in August
• Classes of users with similar demographic data
• Classes of users with similar opinions
Recommendation techniques
• Demographic information and travel motivations
• User interaction with the system
• Similarity of user with predefined frequent tourist
  stereotypes
   – British families with young children staying for two weeks
     in a cheap hotel in Salou in August
• Classes of users with similar demographic data
• Classes of users with similar opinions
  Top-down and bottom-up propagation of preferences
  through the ontology
Summary
• Many AI methodologies and tools (along
  with ICTs) can succesfully be applied in the
  Tourism field
  – Knowledge representation and inference
    through the use of ontologies
  – Automated analysis of Tourism resources
  – Intelligent and personalised recommender
    systems or decision support tools
  – Planning methods
  – Aggregation techniques
  – Dynamic management of user profiles
Tourism applications
  of AI techniques
          Dr. Antonio Moreno
 ITAKA-Intelligent Tech. for Advanced
       Knowledge Acquisition
Computer Science and Mathematics Dep.
 Universitat Rovira i Virgili, Tarragona
     http://deim.urv.cat/~itaka

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Artificial Intelligence techniques in Tourism at URV

  • 1. Tourism applications of Artificial Intelligence techniques Dr. Antonio Moreno, ITAKA research group, URV
  • 2. ITAKA – Basic research lines Multi-agent systems Ontology Learning Information Extraction Automated clustering Intelligent decision support systems Preference management Privacy protection
  • 3. ITAKA – Basic research lines Multi-agent systems Ontology Learning Information Extraction Automated clustering Intelligent decision support systems Preference management Privacy protection
  • 4. Multi-agent systems • Distributed computer systems, in which a group of autonomous and proactive intelligent agents communicate and cooperate to solve a complex problem. • Fields: Health Care and Tourism • Work initiated within the AgentCities European network, 2003-05
  • 7. Main features of Turist@ • Dynamic management of user profile
  • 8. Main features of Turist@ • Dynamic management of user profile – Initial questionnaire
  • 9. Main features of Turist@ • Dynamic management of user profile – Initial questionnaire – Update after explicit evaluation
  • 10. Main features of Turist@ • Dynamic management of user profile – Initial questionnaire – Update after explicit evaluation – Update after user query
  • 11. Main features of Turist@ • Dynamic management of user profile – Initial questionnaire – Update after explicit evaluation – Update after user query • Recommendation techniques – Content-based – Collaborative, based in clusters of users with similar demographic data
  • 12. Main features of Turist@ • Dynamic management of user profile – Initial questionnaire – Update after explicit evaluation – Update after user query • Recommendation techniques – Content-based – Collaborative, based in clusters of users with similar demographic data • User Agents running on mobile devices – Pro-active and location-based recommendations
  • 13.
  • 14. Information Extraction Spanish research project: DAMASK- Data mining algorithms with semantic knowledge (2010-2012) – Support from the Scientific and Technological Park of Tourism and Leisure
  • 15. Basic steps in DAMASK • Ontology-based extraction of relevant data from structured, semi-structured and unstructured Web resources, obtaining an attribute-value matrix [touristic destinations from Wikipedia] • Adaptation of traditional clustering methods to create classifications (trees and partitions) using semantic information • Test the practical applicability of the developed methods in the area of Tourism, building a prototype of a decision support system [2012]
  • 16.
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  • 19. SigTur/e-Destination • Project developed in cooperation with the Scientific and Technological Park for Tourism and Leisure (Vila-Seca), supported by European funds • Ontology-based personalized recommendation of touristic activities in the region of Tarragona
  • 20. Tourism ontology • Comprehensive coverage of touristic activities in the region of Tarragona
  • 22. Recommendation techniques • Demographic information and travel motivations
  • 23. Recommendation techniques • Demographic information and travel motivations
  • 24. Recommendation techniques • Demographic information and travel motivations • User interaction with the system
  • 25. Recommendation techniques • Demographic information and travel motivations • User interaction with the system • Similarity of user with predefined frequent tourist stereotypes – British families with young children staying for two weeks in a cheap hotel in Salou in August
  • 26. Recommendation techniques • Demographic information and travel motivations • User interaction with the system • Similarity of user with predefined frequent tourist stereotypes – British families with young children staying for two weeks in a cheap hotel in Salou in August • Classes of users with similar demographic data
  • 27. Recommendation techniques • Demographic information and travel motivations • User interaction with the system • Similarity of user with predefined frequent tourist stereotypes – British families with young children staying for two weeks in a cheap hotel in Salou in August • Classes of users with similar demographic data • Classes of users with similar opinions
  • 28. Recommendation techniques • Demographic information and travel motivations • User interaction with the system • Similarity of user with predefined frequent tourist stereotypes – British families with young children staying for two weeks in a cheap hotel in Salou in August • Classes of users with similar demographic data • Classes of users with similar opinions Top-down and bottom-up propagation of preferences through the ontology
  • 29.
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  • 32. Summary • Many AI methodologies and tools (along with ICTs) can succesfully be applied in the Tourism field – Knowledge representation and inference through the use of ontologies – Automated analysis of Tourism resources – Intelligent and personalised recommender systems or decision support tools – Planning methods – Aggregation techniques – Dynamic management of user profiles
  • 33. Tourism applications of AI techniques Dr. Antonio Moreno ITAKA-Intelligent Tech. for Advanced Knowledge Acquisition Computer Science and Mathematics Dep. Universitat Rovira i Virgili, Tarragona http://deim.urv.cat/~itaka