A Novel Deep Learning-Based Visual Search Engine in Digital Marketing for Tourism E-Commerce Platforms

Yingli Wu, Qiuyan Liu
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Abstract

Visual search technology, because of its convenience and high efficiency, is widely used by major tourism e-commerce platforms in product search functions. This study introduces an innovative visual search engine model, namely CLIP-ItP, aiming to thoroughly explore the application potential of visual search in tourism e-commerce. The model is an extension of the CLIP (contrastive language-image pre-training) framework and is developed through three pivotal stages. Firstly, by training an image feature extractor and a linear model, the visual search engine labels images, establishing an experimental visual search engine. Secondly, CLIP-ItP jointly trains multiple text and image encoders, facilitating the integration of multimodal data, including product image labels, categories, names, and attributes. Finally, leveraging user-uploaded images and jointly selected product attributes, CLIP-ItP provides personalized top-k product recommendations.
基于深度学习的新型视觉搜索引擎在旅游电子商务平台数字营销中的应用
视觉搜索技术因其便捷、高效的特点,被各大旅游电商平台广泛应用于产品搜索功能中。本研究引入了一个创新的视觉搜索引擎模型,即 CLIP-ItP,旨在深入探索视觉搜索在旅游电子商务中的应用潜力。该模型是 CLIP(对比语言-图像预训练)框架的扩展,通过三个关键阶段开发而成。首先,通过训练图像特征提取器和线性模型,视觉搜索引擎对图像进行标注,从而建立一个实验性的视觉搜索引擎。其次,CLIP-ItP 联合训练多个文本和图像编码器,促进多模态数据的整合,包括产品图像标签、类别、名称和属性。最后,CLIP-ItP 利用用户上传的图像和联合选择的产品属性,提供个性化的 top-k 产品推荐。
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