Recommending method and recommending system
A recommendation method and commodity technology, applied in special data processing applications, instruments, electrical and digital data processing, etc., can solve the problems of inaccurate similarity, inaccuracy, inability to complete recommendation or recommendation, etc., and achieve high accuracy and pertinence. Strong, save search and browsing time effect
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Embodiment 1
[0044] This embodiment is a preferred embodiment of the recommended method of the present invention.
[0045] Recommended methods include:
[0046] 1) Calculate the target user's preference for each attribute of the recommended product;
[0047] 2) The target user's overall preference for the product is obtained by synthesizing the target user's preference for each attribute of the product;
[0048] 3) Recommending corresponding commodities to the target user according to the preference of the target user for the recommended commodity.
[0049] Further, wherein step 1) includes:
[0050] 1-1) Set the probability distribution of each attribute according to the value characteristics of each attribute of the commodity;
[0051] 1-2) Determine the parameters of the probability distribution of each attribute according to historical data;
[0052] 1-3) The probability value of a certain attribute of the product to be recommended relative to the target customer on the above proba...
Embodiment 2
[0080] This embodiment is a preferred embodiment of the recommendation system of the present invention. figure 1 It is a structural block diagram of the recommendation system of the present invention. Such as figure 1 As shown, the recommendation system includes: (1) user identification module: identify the logged-in user, so as to call the corresponding user information; identify the logged-in user according to the user ID, and then provide effective recommendations for the user according to the user's information. The recommendation method can be targeted according to the user's requirements, such as optimal recommendation, surrounding recommendation (recommendation within a distance specified by the user), etc. (2) User information database module: store user information; including user browsing history, purchase history, age, gender, and login information. Based on the user's preference for the product from these information boards, more accurate recommendations are prov...
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