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Built a CF Recommender system to provide reasonable prediction of active user's preference on the basis of selecting & aggregating other user's opinion on MovieLens data set with a 16% improvement over base model leveraging & optimising User-user CF, item-item CF, multiple Similarity functions, Averaging Functions & Neighbourhood size.

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MansiSharma98/MovieLens-Recommender-system

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MovieLens-Recommender-system

Built a CF Recommender system to provide reasonable prediction of active user's preference on the basis of selecting & aggregating other user's opinion on MovieLens data set with a 16% improvement over base model leveraging & optimising User-User CF, Item-Item CF, suprise library, multiple Similarity functions, Averaging Functions & Neighbourhood size.

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Built a CF Recommender system to provide reasonable prediction of active user's preference on the basis of selecting & aggregating other user's opinion on MovieLens data set with a 16% improvement over base model leveraging & optimising User-user CF, item-item CF, multiple Similarity functions, Averaging Functions & Neighbourhood size.

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