Automatic Scene-based Topic Channel Construction System for E-Commerce
Peng Lin, Yanyan Zou, Lingfei Wu, Mian Ma, Zhuoye Ding, Bo Long

TL;DR
This paper introduces an AI-driven system for automatically creating scene-based product channels in e-commerce, enhancing marketing efficiency by generating relevant topics and clustering products accordingly.
Contribution
The paper presents a novel system that automates scene-based topic channel construction, integrating topic generation, product clustering, and quality control for e-commerce applications.
Findings
System effectively generates relevant scene-based topics.
Automated clustering improves product organization.
Online A/B tests show increased user engagement.
Abstract
Scene marketing that well demonstrates user interests within a certain scenario has proved effective for offline shopping. To conduct scene marketing for e-commerce platforms, this work presents a novel product form, scene-based topic channel which typically consists of a list of diverse products belonging to the same usage scenario and a topic title that describes the scenario with marketing words. As manual construction of channels is time-consuming due to billions of products as well as dynamic and diverse customers' interests, it is necessary to leverage AI techniques to automatically construct channels for certain usage scenarios and even discover novel topics. To be specific, we first frame the channel construction task as a two-step problem, i.e., scene-based topic generation and product clustering, and propose an E-commerce Scene-based Topic Channel construction system (i.e.,…
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Taxonomy
TopicsDigital Marketing and Social Media · Consumer Market Behavior and Pricing · Sentiment Analysis and Opinion Mining
MethodsTest
