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变量选择方法及其在健康食品市场研究中的应用探究 被引量:6
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作者 李扬 朱建锋 谢邦昌 《统计与信息论坛》 CSSCI 2013年第10期17-24,共8页
数据挖掘是在大数据中提取客观规律的方法与艺术,如何准确与快速地提取合适的特征变量是其研究的关键问题之一。在模拟分析比较各种数据挖掘算法和提取变量效果的基础上,通过对健康食品市场进行实证研究,指出目前数据挖掘算法存在的不... 数据挖掘是在大数据中提取客观规律的方法与艺术,如何准确与快速地提取合适的特征变量是其研究的关键问题之一。在模拟分析比较各种数据挖掘算法和提取变量效果的基础上,通过对健康食品市场进行实证研究,指出目前数据挖掘算法存在的不足及发展前景。 展开更多
关键词 数据挖掘 变量选择 外部选择法 内生选择
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The Research on Social Networks Public Opinion Propagation Influence Models and Its Controllability 被引量:9
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作者 Lejun Zhang Tong Wang +3 位作者 Zilong Jin Nan Su Chunhui Zhao Yongjun He 《China Communications》 SCIE CSCD 2018年第7期98-110,共13页
Public opinion propagation control is one of the hot topics in contemporary social network research. With the rapid dissemination of information over the Internet, the traditional isolation and vaccination strategies ... Public opinion propagation control is one of the hot topics in contemporary social network research. With the rapid dissemination of information over the Internet, the traditional isolation and vaccination strategies can no longer achieve satisfactory results. A positive guidance technology for public opinion diffusion is urgently needed. First, based on the analysis of influence network controllability and public opinion diffusion, a positive guidance technology is proposed and a new model that supports external control is established. Second, in combination with the influence network, a public opinion propagation influence network model is designed and a public opinion control point selection algorithm(POCDNSA) is proposed. Finally, An experiment verified that this algorithm can lead to users receiving the correct guidance quickly and accurately, reducing the impact of false public opinion information; the effect of CELF is no better than that of the POCDNSA algorithm. The main reason is that the former is completely based on the diffusion cascade information contained in the training data, but does not consider the specific situation of the network structure and the diffusion of public opinion information in the closed set. thus, the effectiveness and feasibility of the algorithm is proven. The findings of this article therefore provide useful insights for the implementation of public opinion control. 展开更多
关键词 social network public opinion propagation control influence network
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