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    A proposal for the development of adaptive spoken interfaces to access the Web

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    Spoken dialog systems have been proposed as a solution to facilitate a more natural human鈥搈achine interaction. In this paper, we propose a framework to model the user壮s intention during the dialog and adapt the dialog model dynamically to the user needs and preferences, thus developing more efficient, adapted, and usable spoken dialog systems. Our framework employs statistical models based on neural networks that take into account the history of the dialog up to the current dialog state in order to predict the user壮s intention and the next system response. We describe our proposal and detail its application in the Let壮s Go spoken dialog system.Work partially supported by Projects MINECO TEC2012-37832- C02-01, CICYT TEC2011-28626-C02-02, CAM CONTEXTS (S2009/ TIC-1485
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