基于深度神经网络的导购文本生成系统

Shilin Xu, Zhimin He, Junjian Su, Liangsheng Zhong, Yue Xu, Huimin Gu, Yubing Huang
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引用次数: 2

摘要

在中国,许多人在淘宝、京东和其他网络平台上购物。越来越多的产品通过自媒体做广告。导购文字是提高广告效果的有效手段。然而,自媒体公司需要聘请大量的专业作家来撰写导购文字,这导致了高昂的人工成本。本文提出了一种导购文本生成器,它可以在给定商品图像的情况下自动生成导购文本。本文主要研究服装导购文本的生成。本文提出的文本生成器由卷积神经网络、对导购文本具有长短期记忆(LSTM)的递归神经网络和评价图像与导购文本关联度的结构化模块组成。实验结果表明,所提出的导购文本生成系统能够生成吸引人的文本来宣传给定的服装。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Shopping Guide Text Generation System Based on Deep Neural Network
Many people shop on Taobao, Jingdong and other online platforms in China. More and more products are advertised through self-media. Shopping guide text is an effective means to improve the effectiveness of advertising. However, self-media companies need to hire a lot of professional writer to write shopping guide text, which leads to high labor cost. In this paper, we proposed a shopping guide text generator, which can automatically generate shopping guide text given an image of the product. In this paper, we focus on the shopping guide text generation of clothes. The proposed text generator consists of a convolutional neural network, a recurrent neural network with long-short-term-memory (LSTM) over shopping guide text, and a structured module which evaluates the related degree between the image and shopping guide text. The experimental results show that the proposed shopping guide text generation system can generate attractive text to advertise the given clothes.
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