基于个性化推荐算法的媒体融合发展现状及路径分析——以大连新闻传媒集团为例

F. Yu
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引用次数: 1

摘要

随着大数据、人工智能、5G技术的发展,媒体逐渐走向智能化。各种类型的社交媒体已经使用算法技术为用户提供个性化的推荐。持久的内容生态和传播机制将面临重构。本文分析了个性化推荐算法对用户获取、内容消费和内容分享的影响,并以大连新闻传媒集团为研究对象,分析其媒体融合的发展现状和存在的问题,进而分析其基于个性化推荐算法的媒体融合发展路径。首先,要从上到下转变媒介融合的方式,推进深度和广度的融合。其次,在构建新媒体矩阵的基础上,建立用户思维,结合用户的行为特征进行精准推荐。最后,要重视各媒体人才的培养,引入人才激励机制,加强公众在新媒体中的信息素养教育。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of the Development Status and Path of Media Convergence Based on Personalized Recommendation Algorithm: Case Study of Dalian News Media Group
With the development of big data, artificial intelligence, and 5G technology, the media has gradually become intelligent. Various types of social media have used algorithmic technology to provide users with personalized recommendations. The long-lasting content ecology and communication mechanism will face reconstruction. This article analyzes the impact of personalized recommendation algorithms on user acquisition, consumption and sharing of content, and focus on Dalian News Media Group to analyze the development status and existing problems of its media convergence, and then analyzes the development path of its media convergence based on the personalized recommendation algorithm. First of all, the way of media convergence should be conversed from top to bottom to advance the integration of depth and breadth. Secondly, establishing user thinking on the basis of building a new media matrix, combined with the behavioral characteristics of users for accurate recommendation. Finally, we must pay attention to all media personnel training, the introduction of talent incentive mechanism, and to enhance public information literacy education in new media.
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