作者
Biresh Kumar, Ayush Kumar Singh, Pallab Banerjee
发表日期
2023/6/14
研讨会论文
2023 International Conference on Sustainable Computing and Smart Systems (ICSCSS)
页码范围
604-610
出版商
IEEE
简介
Product recommendation systems work well at boosting user engagement, increasing sales, and enhancing customer satisfaction by making personalized and relevant suggestions for goods based on users’ preferences and behaviors. However, these systems face several challenges, including data sparsity, scalability, and bias. Recent studies have looked into the creation of image-based recommendation systems using deep learning and transfer learning methods, such as Reverse Image Search, to overcome these difficulties. This study discusses the use of deep learning and transfer learning techniques, including Reverse Image Search, to create a product recommendation system based on images. The system draws features from images and produces five product recommendations based on similarities to other images using an already trained CNN model called ResNet-50. The study highlights the …
引用总数
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