A News Recommendation Method Based on Hierarchical Latent Variable Model
A recommendation method and technology of latent variables, applied in text database clustering/classification, unstructured text data retrieval, special data processing applications, etc., can solve the problems of sparse user item rating matrix, inaccurate recommendation, lack of novelty, etc. , to achieve the effect of good real-time performance, high scalability, and preventing over-fitting
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[0046] The idea of threshold autoregression is to divide the entire space into several small spaces, consider a linear model in each small space, and then combine these small models together to form a model on the entire space. In the whole hybrid model, this application divides the user characteristics and item characteristics into several sub-categories, establishes a hidden variable model for each category, and then combines these several categories together to form the entire hidden variable model, which is called the subcategory. Layer hidden variable model.
[0047] like figure 1 Shown is the block flow chart of the present invention, and the present invention mainly comprises seven big steps.
[0048] S1. News crawling. According to the structure of different portal websites, configure different regular expressions to crawl different types of news from major portal websites and store them in the local database of the recommendation system. The crawled content include...
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