User behavior machine learning model training method and device
A machine learning model and training device technology, applied in the computer field, can solve the problems of reducing the accuracy of user behavior prediction and ignoring the impact
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Embodiment 1
[0052] This embodiment introduces a method for training a machine learning model of user behavior, such as figure 1 As shown, the method includes the following steps.
[0053] Step 101: Collect historical access data of users.
[0054] Step 102: Classify and aggregate the user's historical access data according to a feature set containing one or more dimensions to form multiple samples.
[0055] Specifically, the feature set includes features of historical access data in one or more dimensions. Select one or more dimensions as the base dimension. Collect historical access data with the same feature value of the feature corresponding to the reference dimension as a sample.
[0056] Each sample contains the characteristic value corresponding to the characteristic of the user's historical access data in the reference dimension. The dimension may include the dimension of the user and the dimension of the user's access object. For example, the characteristic corresponding to the dimensio...
Embodiment 2
[0082] In this embodiment, the method in embodiment 1 is used to predict user behavior, such as Figure 4 As shown, including the following steps:
[0083] Step 401, select any sample point in the sample set as the target point P obj Calculate the statistical information of the target point, and determine whether the traffic (pv) number in the statistical information of the target point is greater than the first threshold (lowPv_th) of the traffic number, if it is greater, go to step 402, if not, go to step 403;
[0084] The function of lowPv_th is as follows: if the pv of the target point is greater than or equal to lowPv_th, it is considered that the statistical information of the target point is sufficient, and there is no need to find neighboring points, and a new sample is formed to train the machine learning model to predict user behaviors directly based on the statistical information of the target point. If the pv of the target point is less than lowPv_th, it is considered ...
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