E-BOOK RECOMMENDATION SYSTEM

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dc.contributor.author Farzan, Muhammad Reg # 57357
dc.contributor.author Siddiqui, Fareed Uddin Reg # 57339
dc.contributor.author Shah, Syed Ali Dilawar Reg # 57361
dc.date.accessioned 2023-12-04T04:22:33Z
dc.date.available 2023-12-04T04:22:33Z
dc.date.issued 2022
dc.identifier.uri http://hdl.handle.net/123456789/16632
dc.description Supervised by Marouf en_US
dc.description.abstract roday how much data the web develops quickly and individuals need a few instruments to find and access suitable data. One of such techniques is known as a recommendation system. Recommendation systems help to explore rapidly and get fundamental data. For the most part they are utilised in Internet shops to expand the benefit. This teporl explores different techniques used for the recommendation of a on book. Different stages involve signup & sign in for buying books, reading books, payment option is included and by the liking ofthe user this system suggests the books. The final product will use php for frontend and backend and python for recommending books. This project uses the Artificial Neural Network technique to develop the software. The main advantage of using this recommendation system is to make it easier to find a good book to teach his/her students as we know that there are a lot of books over the internet and sometimes readers cannot choose which book is more suitable for him or for his/her students. We use Python to calculate a numeric value that denotes the similarity between two books. Cosine Similarity is a function that returns the 20 most similar books based on the cosine similarity score. The application is user friendly and is very beneficial for readers. Our main aim to reduce time offinding appropriate book in respective field. en_US
dc.language.iso en_US en_US
dc.publisher Bahria University Karachi Campus en_US
dc.relation.ispartofseries BS IT;MFN 57
dc.title E-BOOK RECOMMENDATION SYSTEM en_US
dc.type Project Reports en_US


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