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以SNS社区构建高校校园网络文化推进机制 被引量:1
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作者 时钟平 《教学研究》 2013年第4期8-10,24,共4页
目前网络已经成为了高校学生获取信息和交流思想的重要渠道,校园文化建设的诸多方面已经离不开网络。本文研究探讨在高校信息化背景下,如何利用校园SNS社区构建高校校园网络文化推进机制,从而营造和谐健康的校园网络文化。
关键词 SNS 网络虚拟社区 高校 校园网络文化推进机制
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发挥校园网络服务功能 推进校园文化建设
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作者 黄红晓 《科学大众(智慧教育)》 2015年第6期127-,共1页
校园文化建设内涵丰富,范围广泛,形式多样,现实学校中,网络与传统教育形式相互并举、交互融合,构成文化建设内容,共同发挥作用,笔者就如何进行"网络推进"谈一些看法。
关键词 网络推进 指导性 组织团队 项目构成 和谐环境
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《关于加快推进本市5G网络建设和应用的实施意见》的政策解读
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《上海市人民政府公报》 2019年第15期23-24,共2页
5G作为信息基础设施的核心引领技术,是推动产业转型升级及经济社会发展的新引擎.国家高度重视5G发展,明确要求加快5G商用步伐,加强新型基础设施建设.上海要强化新一代信息基础设施核心能力,充分发挥5G的网络支撑及应用赋能作用.为贯彻... 5G作为信息基础设施的核心引领技术,是推动产业转型升级及经济社会发展的新引擎.国家高度重视5G发展,明确要求加快5G商用步伐,加强新型基础设施建设.上海要强化新一代信息基础设施核心能力,充分发挥5G的网络支撑及应用赋能作用.为贯彻落实国家总体部署,加快推进上海5G网络建设和应用,促进数字化、网络化、智能化转型升级,发挥5G对全市国民经济和社会发展的核心驱动作用. 展开更多
关键词 政策解读 建设和应用 《关于加快推进本市5G网络建设和应用的实施意见》 加快推进 信息基础设施 人工智能 产业规模 无线电台 经济高质量发展
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Fault Detection and Diagnosis of a Gearbox in Marine Propulsion Systems Using Bispectrum Analysis and Artificial Neural Networks 被引量:3
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作者 李志雄 严新平 +2 位作者 袁成清 赵江滨 彭中笑 《Journal of Marine Science and Application》 2011年第1期17-24,共8页
A marine propulsion system is a very complicated system composed of many mechanical components.As a result,the vibration signal of a gearbox in the system is strongly coupled with the vibration signatures of other com... A marine propulsion system is a very complicated system composed of many mechanical components.As a result,the vibration signal of a gearbox in the system is strongly coupled with the vibration signatures of other components including a diesel engine and main shaft.It is therefore imperative to assess the coupling effect on diagnostic reliability in the process of gear fault diagnosis.For this reason,a fault detection and diagnosis method based on bispectrum analysis and artificial neural networks (ANNs) was proposed for the gearbox with consideration given to the impact of the other components in marine propulsion systems.To monitor the gear conditions,the bispectrum analysis was first employed to detect gear faults.The amplitude-frequency plots containing gear characteristic signals were then attained based on the bispectrum technique,which could be regarded as an index actualizing forepart gear faults diagnosis.Both the back propagation neural network (BPNN) and the radial-basis function neural network (RBFNN) were applied to identify the states of the gearbox.The numeric and experimental test results show the bispectral patterns of varying gear fault severities are different so that distinct fault features of the vibrant signal of a marine gearbox can be extracted effectively using the bispectrum,and the ANN classification method has achieved high detection accuracy.Hence,the proposed diagnostic techniques have the capability of diagnosing marine gear faults in the earlier phases,and thus have application importance. 展开更多
关键词 marine propulsion system fault diagnosis vibration analysis BISPECTRUM artificial neural networks Article
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