False comment detection method based on bicyclic graph
A detection method and double-loop technology, applied in the field of network security, can solve the problems of poor filtering effect and low credibility of the initial value of confidence, and achieve the effect of optimizing the consistency of comments
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[0093] The three Yelp data sets used in the experiment example are:
[0094] YelpChi dataset, containing 67395 reviews, 38063 users and 201 stores;
[0095] YelpNYC dataset, containing 359,052 reviews, 160,225 users and 923 stores;
[0096] The YelpZip dataset contains 608,598 reviews, 260,277 users, and 5,044 stores.
[0097] Using the above false review detection method to test three Yelp data sets, the test results are:
[0098] In the YelpChi dataset, fake users account for about 20.33% of the total number of users, and fake reviews account for about 13.23% of the total number of reviews; in the YelpNYC dataset, fake users account for about 17.79% of the total number of users, and fake reviews account for about 10.27% of the total number of reviews; fake users in the YelpZip dataset Accounting for about 23.91% of the total number of users, fake reviews accounted for about 13.22% of the total number of reviews.
[0099] It can be seen that the false comment detection met...
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