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    Implementasi Metode Content-Based Pada Sistem Rekomendasi Vitamin Dan Suplemen

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    Date
    2024
    Author
    Paningtyas, Laella Alsya
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    Abstract
    Since the Covid-19 pandemic started, many people have been advised to take supplements or vitamins to boost their immune systems. There are so many different types of vitamins and supplements available that it often confuses people when they try to choose the right products for their health. In the current digital era, all information can be accessed easily via online platforms and one of the popular online platforms that provides a lot of information about vitamins and supplements is halodoc.com. However, with all this information out there, users might feel overwhelmed trying to find products that fit their needs. That's why we need an effective recommendation system to help users find the best vitamin and supplement products for their health and immune needs. One of the recommendation system approaches that will be used in this research is the Content-Based Filtering method. This method focuses on product characteristics, specifically the composition of vitamins and supplements. This research uses uses a word weighting method known as the Term Frequency-Inverse Document Frequency (TF-IDF) algorithm and a similarity level calculation method called the Cosine Similarity algorithm. The result of this research is a recommendation for the product "Becefort," specifically the product "Bexicom," which has a Cosine Similarity value of 0.8340. The recommendation system that has been developed is deployed on a website for general access. With this recommendation system in place, it is hoped that it will make it easier and save time for consumers in selecting replacement vitamins and supplements that match the composition or content needed by the consumers.
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    https://dspace.uii.ac.id/123456789/50601
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