Sistem Prediksi Keuntungan Influencer Pengguna E-Commerce Shopee Affiliates menggunakan Metode Naïve Bayes

S. Susanti, Aisum Aliyah Sari, M. K. Anam, M. Jamaris, Hamdani Hamdani
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Abstract

Shopee Affiliate is one of Shopee's e-commerce programs to make it easier to market products. However, with the popularity of this program, there are still many people who do not know the advantages of this program. As a result, in this e-commerce, not all sellers benefit (loss) from the products sold. In order to avoid the problem of losses on marketed products, this study aims to produce a profit prediction system for shoppe affiliate e-commerce users. To build the system, this research uses the waterfall method which is used to complete the prediction system. The first stage is to collect data from social media and references related to the prediction system, then design a prediction system, after carrying out the process of system creation and implementation and testing. The test uses blackbox to test the system and accuracy test to determine the level of accuracy of this system. The result of this prediction system is to gain knowledge in the form of profit rate patterns of influencers of shopee affiliate e-commerce users. Testing the accuracy of the system built has a very good performance with a percentage of 100%. So that the profit prediction of shopee affiliate e-commerce users is feasible to be implemented. With this system, it is hoped that the community will be able to increase sales at e-commerce shopee.
E-Commerce用户Shopee affilits预测系统采用了Naive Bayes的方法
Shopee联盟是Shopee的电子商务计划之一,使其更容易营销产品。然而,随着这个程序的普及,仍然有很多人不知道这个程序的优点。因此,在这种电子商务中,并不是所有的卖家都从销售的产品中受益(损失)。为了避免销售产品的损失问题,本研究旨在为shoppe联盟电子商务用户制作一个利润预测系统。为了构建系统,本研究采用瀑布法来完成预测系统。第一阶段是收集与预测系统相关的社交媒体和参考资料,然后设计一个预测系统,经过系统的创建和实施以及测试的过程。测试采用黑盒对系统进行测试,并通过精度测试来确定系统的精度水平。该预测系统的结果是,通过对shopee联盟电商用户的影响者的利润率模式进行了解。测试所构建的系统的准确率达到了100%,性能非常好。从而使商比联盟电子商务用户的盈利预测具有可行性。有了这个系统,希望社区能够增加电商店铺的销售额。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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