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We address the feature extraction problem for document ranking in information retrieval. We then propose LifeRank, a Linear feature extraction algorithm for Ranking. In LifeRank, we regard each document collection for ranking as a matrix, referred to as the original matrix. We try to optimize a transformation matrix, so that a new matrix (dataset) can be generated as the product of the original matrix and a transformation matrix. The transformation matrix projects high-dimensional document vectors into lower dimensions. Theoretically, there could be very large transformation matrices, each leading to a new generated matrix. In LifeRank, we produce a transformation matrix so that the generated new matrix can match the learning to rank problem. Extensive experiments on benchmark datasets show the performance gains of LifeRank in comparison with state-of-the-art feature selection algorithms.
koneoppiminen, Tietojenkäsittelytiede, dimension reduction, feature extraction, Computer Science, algoritmit, tiedonhakujärjestelmät, tiedonhaku, 004, learning to rank
koneoppiminen, Tietojenkäsittelytiede, dimension reduction, feature extraction, Computer Science, algoritmit, tiedonhakujärjestelmät, tiedonhaku, 004, learning to rank
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