Information recommendation method of calculating user preference similarity based on a context ontology tree
A technology of information recommendation and context, applied in computing, special data processing applications, instruments, etc., can solve problems such as cold start, insufficient semantic expression of multi-dimensional context, and one-sided user scoring technology
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[0065] The present invention will be further described below in conjunction with the accompanying drawings.
[0066] refer to figure 1 , an information recommendation method for calculating user preference similarity based on context ontology tree, including the following steps:
[0067] Step 1, context-based user preference extraction;
[0068] Input: network user u i , commodity s j , the context set C k ;
[0069] Output: context-based user preferences
[0070] Step 11: Calculate the average value of a context instance in a single-dimensional context As a single user historical behavior context data, where d ij to contain the context The number of user historical behavior contexts. For example, the behavior vector UHBC={Product,BTime,Intention} composed of the product information (Product), purchase time (BTime), and purchase intention (Intention) that the user purchased at a certain moment for a certain purpose, Combined for multi-dimensional context.
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