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高校无线局域网用户认证控制及管理机制 被引量:5
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作者 应一凡 朱雪波 《计算机安全》 2011年第4期82-84,共3页
目前我国高校无线局域网技术发展迅速,可无线用户群和种类日益增多,需求纷繁复杂,在管理和安全上不断出现漏洞,因此,急需完善认证和用户管理机制。通过对高校无线用户群的区分,针对不同用户群体,提出相应的认证和管理机制,以及在这种机... 目前我国高校无线局域网技术发展迅速,可无线用户群和种类日益增多,需求纷繁复杂,在管理和安全上不断出现漏洞,因此,急需完善认证和用户管理机制。通过对高校无线用户群的区分,针对不同用户群体,提出相应的认证和管理机制,以及在这种机制下业务的开展情况。此外,针对这种认证管理机制,设计了相应的设备部署方式和网络设计方案。 展开更多
关键词 无线局域网 用户分类管理 身份认证策略
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Words alignment based on association rules for cross-domain sentiment classification 被引量:4
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作者 Xi-bin JIA Ya JIN +3 位作者 Ning LI Xing SU Barry CARDIFF Bir BHANU 《Frontiers of Information Technology & Electronic Engineering》 SCIE EI CSCD 2018年第2期260-272,共13页
Automatic classification of sentiment data(e.g., reviews, blogs) has many applications in enterprise user management systems, and can help us understand people's attitudes about products or services. However, it is... Automatic classification of sentiment data(e.g., reviews, blogs) has many applications in enterprise user management systems, and can help us understand people's attitudes about products or services. However, it is difficult to train an accurate sentiment classifier for different domains. One of the major reasons is that people often use different words to express the same sentiment in different domains, and we cannot easily find a direct mapping relationship between them to reduce the differences between domains. So, the accuracy of the sentiment classifier will decline sharply when we apply a classifier trained in one domain to other domains. In this paper, we propose a novel approach called words alignment based on association rules(WAAR) for cross-domain sentiment classification,which can establish an indirect mapping relationship between domain-specific words in different domains by learning the strong association rules between domain-shared words and domain-specific words in the same domain. In this way, the differences between the source domain and target domain can be reduced to some extent, and a more accurate cross-domain classifier can be trained. Experimental results on Amazon~ datasets show the effectiveness of our approach on improving the performance of cross-domain sentiment classification. 展开更多
关键词 Sentiment classification Cross-domain Association rules
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