Multi-layer neural network based user QoE (Quality of Experience) prediction method in video service
A multi-layer neural network and video service technology, which is applied in the field of user experience quality prediction, can solve problems such as inaccurate completion and limited prediction performance, and achieve the effects of good prediction of user experience quality, improved accuracy, and efficient processing
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[0041] The present invention will be further described in detail below in conjunction with the accompanying drawings and specific examples.
[0042] A method for predicting the quality of user experience based on a multi-layer neural network in video services, this method, such as figure 1 shown, including the following steps:
[0043] Step 1: Data preprocessing: Select characteristic parameters that affect user experience in video services, including warning times, loss rate, export download bandwidth, media rate, delay, media loss rate, CPU usage, and video transmission quality. In addition, according to the user's reported failure / non-reported failure in the video service, it is mapped to the user's QoE. When the QoE is 1, it means that the user is satisfied with the service used, and when the QoE is 0, the user is not satisfied;
[0044] Step 2: Establish a QoE prediction model: a multi-layer neural network model is used here. The neural network consists of five layers, ...
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