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A Computational Framework for  Multi-dimensional Context-aware  Adaptation Vivian Genaro Motti Louvain Interaction Laboratory (LILAB) Universitécatholique de Louvain (UCL) Vivian.genaromotti@uclouvain.be Introduction    Adaptation consists in transforming, according to the context, different aspects of a system, in different levels, in order to provide users an interaction of high usability level Motivation    Most of the applications are often developed considering a pre-defined context of use, however, not only the contexts of use and users are heterogeneous, but users also interact with applications via different devices, platforms and means Challenges and Shortcomings    Consider all context information to provide users adaptation with high usability level and transparency    The works reported so far are often limited to one dimension orplatform  at a time; the current approaches are not unified, inconsistencies, e.g. in terminology, are common Goal    Develop a framework to support the implementation of adaptation considering different contexts of use, dimensions and levels of an application subject to adaptation, aiming a high usability level Methodology  A Systematic Review to gather adaptation concepts (techniques, strategies, approaches, and models)  A template to define adaptation techniques regarding content (audio, image, text), presentation and navigation    UML diagrams to model the context information   An Algorithms Library to implement adaptation techniques  Advanced Logic Algorithms using Machine Learning techniques to provide context-aware adaptation (e.g. Decision Tree, Bayesian Network and Hidden Markov Model)   Iterative usability evaluations    Case studies to verify the feasibility Results  A systematic review is being performed continuously: 89 techniques were documented with templates, detailed, analyzed and compared    Models are being created in UML to model the context (Use Case, Class Diagram, State Machine, Sequence Diagram)  An Algorithms Library is being developed with the techniques gathered    Machine learning algorithms are being investigated to combine information and provide adaptation Future Work    Implement the machine learning techniques    Define precisely the evaluation plan, perform evaluation    Perform the case studies Final Remarks  It is a challenge to provide users adaptation without disturbing and confusing them, user evaluation is, then, necessary to achieve a higher level of usability.    A wide approach is necessary to cover and try to unify the current knowledge about context-aware adaptation. feedback [Serenoa]e Serenoa is aimed at developing a novel, open platform for enabling the creation of context-sensitive SFE.  Title Text Image Serenoa Lorem ipsum lorem ipsum lorem ipsum lorem ipsum

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A Computational Framework for Multi-dimensional Context-aware Adaptation

  • 1. A Computational Framework for Multi-dimensional Context-aware Adaptation Vivian Genaro Motti Louvain Interaction Laboratory (LILAB) Universitécatholique de Louvain (UCL) Vivian.genaromotti@uclouvain.be Introduction Adaptation consists in transforming, according to the context, different aspects of a system, in different levels, in order to provide users an interaction of high usability level Motivation Most of the applications are often developed considering a pre-defined context of use, however, not only the contexts of use and users are heterogeneous, but users also interact with applications via different devices, platforms and means Challenges and Shortcomings Consider all context information to provide users adaptation with high usability level and transparency The works reported so far are often limited to one dimension orplatform at a time; the current approaches are not unified, inconsistencies, e.g. in terminology, are common Goal Develop a framework to support the implementation of adaptation considering different contexts of use, dimensions and levels of an application subject to adaptation, aiming a high usability level Methodology A Systematic Review to gather adaptation concepts (techniques, strategies, approaches, and models) A template to define adaptation techniques regarding content (audio, image, text), presentation and navigation UML diagrams to model the context information An Algorithms Library to implement adaptation techniques Advanced Logic Algorithms using Machine Learning techniques to provide context-aware adaptation (e.g. Decision Tree, Bayesian Network and Hidden Markov Model) Iterative usability evaluations Case studies to verify the feasibility Results A systematic review is being performed continuously: 89 techniques were documented with templates, detailed, analyzed and compared Models are being created in UML to model the context (Use Case, Class Diagram, State Machine, Sequence Diagram) An Algorithms Library is being developed with the techniques gathered Machine learning algorithms are being investigated to combine information and provide adaptation Future Work Implement the machine learning techniques Define precisely the evaluation plan, perform evaluation Perform the case studies Final Remarks It is a challenge to provide users adaptation without disturbing and confusing them, user evaluation is, then, necessary to achieve a higher level of usability. A wide approach is necessary to cover and try to unify the current knowledge about context-aware adaptation. feedback [Serenoa]e Serenoa is aimed at developing a novel, open platform for enabling the creation of context-sensitive SFE. Title Text Image Serenoa Lorem ipsum lorem ipsum lorem ipsum lorem ipsum