Social Media Data Analysis using Recommendation Algorithms

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Abstract

Recommender frameworks (RSs) are utilized in application areas to help clients in the quest for their preferred items .Recommender system filters information which takes users ratings and predict user preferences in ecommerce and other categorical websites. We examine individual proposal dependent on client inclinations and search the neighbors through the client inclinations. It generates recommendations based on implicit feedback or explicit feedback. Implicit feedback is based on analysis of browsing patterns of the user. Express criticism is produced from the appraisals given by the client. All the more extensively tended to was the subject of AI's calculations, centered around separating calculations dependent on the clients or questions, and dependent on substance.

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Social Media Data Analysis using Recommendation Algorithms. (2019). International Journal of Innovative Technology and Exploring Engineering, 8(12S), 394–397. https://doi.org/10.35940/ijitee.l1098.10812s19

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