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      • AP PAREL P RODUC TS RETRIEVAL SYSTEM BASED ON P SYCOLOGICAL FEATURE SPACE

        ( Atsushi Ohtake ),( Masayuki Takatera ),( Takao Furukawa ),( Yoshio Shimizu ) 한국감성과학회 2000 춘계학술대회 Vol.2000 No.-

        An apparel products retrieval system was proposed in which users can refer to products using Kansei evaluation values. The system adopts relevance feedback using history of the retrieval to learn the tendency of user evaluation. The system is based on a vector space retrieval model using products images expression as semantic scales. The system makes a query from user inputting information and retrieves closest products from the database. Revising algorithms of the difference method, linear multiple regression method and backpropagation neural network model are used for the learning. Some simulation was perfonned to investigate the effectiveness and criteria of the search. As a result of evaluation of the accuracy, it was found that the linear multiple regression and the neural network models are effective for the retrieval considering the individual Kansei.

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