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The vast amount of information available on social networks has led to the importance of using friend recommender systems to discover knowledge about future communications. It is challenging to choose the best machine learning approach to address the recommender system issue since there are several strategies with various benefits and drawbacks. In light of this, a solution based on the stacking approach was put out in this study to provide a buddy recommendation system in social networks. Additionally, a decrease in system performance was caused by the large amount of information that was accessible and the inefficiency of some functions. To solve this problem, a particle swarm optimization (PSO) algorithm to select the most efficient features was used in our proposed method. To learn the model in the objective function of the particle swarm algorithm, a hybrid system based on stacking is proposed. In this method, two random forests and Extreme Gradient Boosting (XGBoost) had been used as the base classifiers. The results obtained from these base classifiers were used in the logistic regression algorithm, which has been applied sequentially. The suggested approach was able to effectively address this issue by combining the advantages of the applied strategies. The results of implementation and evaluation of the proposed system show the appropriate efficiency of this method compared with other studied techniques.<\/jats:p>","DOI":"10.1155\/2022\/5864545","type":"journal-article","created":{"date-parts":[[2022,8,31]],"date-time":"2022-08-31T13:20:09Z","timestamp":1661952009000},"update-policy":"https:\/\/doi.org\/10.1002\/crossmark_policy","source":"Crossref","is-referenced-by-count":1,"title":["Friend Recommender System for Social Networks Based on Stacking Technique and Evolutionary Algorithm"],"prefix":"10.1155","volume":"2022","author":[{"given":"Aida","family":"Ghorbani","sequence":"first","affiliation":[],"role":[{"role":"author","vocabulary":"crossref"}]},{"ORCID":"https:\/\/orcid.org\/0000-0001-7846-2107","authenticated-orcid":false,"given":"Amir","family":"Daneshvar","sequence":"additional","affiliation":[],"role":[{"role":"author","vocabulary":"crossref"}]},{"given":"Ladan","family":"Riazi","sequence":"additional","affiliation":[],"role":[{"role":"author","vocabulary":"crossref"}]},{"given":"Reza","family":"Radfar","sequence":"additional","affiliation":[],"role":[{"role":"author","vocabulary":"crossref"}]}],"member":"311","published-online":{"date-parts":[[2022,8,31]]},"reference":[{"key":"e_1_2_10_1_2","doi-asserted-by":"publisher","DOI":"10.1016\/j.knosys.2018.05.027"},{"key":"e_1_2_10_2_2","doi-asserted-by":"publisher","DOI":"10.1016\/j.eswa.2017.12.020"},{"key":"e_1_2_10_3_2","doi-asserted-by":"publisher","DOI":"10.1007\/s10668-022-02350-2"},{"key":"e_1_2_10_4_2","doi-asserted-by":"publisher","DOI":"10.1145\/1117454.1117456"},{"key":"e_1_2_10_5_2","doi-asserted-by":"publisher","DOI":"10.1145\/1117454.1117465"},{"key":"e_1_2_10_6_2","doi-asserted-by":"publisher","DOI":"10.1016\/j.jnca.2020.102716"},{"key":"e_1_2_10_7_2","doi-asserted-by":"publisher","DOI":"10.1109\/tsmc.2019.2932913"},{"key":"e_1_2_10_8_2","doi-asserted-by":"publisher","DOI":"10.4018\/ijsesd.2021070105"},{"key":"e_1_2_10_9_2","doi-asserted-by":"publisher","DOI":"10.1016\/j.ipm.2018.02.005"},{"key":"e_1_2_10_10_2","doi-asserted-by":"publisher","DOI":"10.1007\/s10115-017-1121-6"},{"key":"e_1_2_10_11_2","doi-asserted-by":"publisher","DOI":"10.1007\/s10489-020-01685-5"},{"key":"e_1_2_10_12_2","article-title":"Line Graph Neural Networks for Link Prediction","volume":"44","author":"Cai L.","year":"2021","journal-title":"IEEE Transactions on Pattern Analysis and Machine Intelligence"},{"key":"e_1_2_10_13_2","doi-asserted-by":"publisher","DOI":"10.1016\/j.gltp.2021.08.012"},{"key":"e_1_2_10_14_2","doi-asserted-by":"crossref","unstructured":"KumarK. 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