After training the model, you can generate predictions. To
generate predictions, use the sample data from the
testing_dataset dataset.
NULL values for any row in the
users or items columns
generates an error.
Complete the following tasks:
The options for
ML_PREDICT_ROW
and
ML_PREDICT_TABLE
include the following:
topk: The number of recommendations to provide. The default is3.-
recommend: Specifies what to recommend. Permitted values are:ratings: Predicts ratings that users will give. This is the default value.items: Recommends items for users.users: Recommends users for items.users_to_items: This is the same asitems.items_to_users: This is the same asusers.items_to_items: Recommends similar items for items.users_to_users: Recommends similar users for users.
remove_seen: Iftrue, the model does not repeat existing interactions from the training table. It only applies to the recommendationsitems,users,users_to_items, anditems_to_users.
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Learn about the different ways to generate specific recommendations with a recommendation model: