Collaborative filtering method based on integration of fuzzy weight similarity measurement and clustering
A similarity measurement and collaborative filtering technology, applied in the field of recommender systems
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[0098] refer to figure 1 , the concrete steps of the present invention are as follows:
[0099] Step 1, process the user-item rating matrix R in the training set m×n , remove users with less than 20 ratings and items that have not been rated by any user, and the corresponding users and ratings in the test set are also removed; determine the target user U i , Item I to be graded c , the nearest neighbor query number knear and the classification number kcluster;
[0100] Step 2, according to the processed scoring matrix R m×n , use fcos, fcor, fadj to calculate three different user similarity matrices FCOS, FCOR, FADJ respectively, and know the similarity between any two users from the similarity matrix;
[0101] Step 3, based on the similarity obtained in step 2, classify all users according to the k-means algorithm and the classification number kcluster;
[0102] Step 4, select user U i The class index where it is located; take the class index and the target project I c...
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