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首页> 外文期刊>Indian Journal of Science and Technology >Determinant Factors on Student Empowerment and Role of Social Media and eWOM Communication: Multivariate Analysis on LinkedIn usage
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Determinant Factors on Student Empowerment and Role of Social Media and eWOM Communication: Multivariate Analysis on LinkedIn usage

机译:影响学生能力的决定因素以及社交媒体和eWOM交流的作用:LinkedIn使用情况的多元分析

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Background/Objectives: In recent times, there is phenomenal increase in usage of Social Networking Sites like Facebook, LinkedIn etc. by college students and young professionals. This study focuses on identifying key factors that influence LinkedIn usage and the role of eWOM communication in enhancing social connectivity and engagement of students in meaningful activities to improve their social and academic standings. A theoretical model on social networking by students is proposed and the results and recommendations of this study will be brought to practical use towards student empowerment. Methods/Statistical Analysis: A preliminary survey was conducted to understand how young university students use the Social Networking Site LinkedIn and the responses were used to frame a questionnaire. A second level survey was conducted among the same set of participants by collecting their responses in five point Likert Scale. Exploratory Factor Analysis was conducted using the LinkedIn Survey responses to identify the hidden factors associated with the indicator items in the data set. Subsequently, a theoretical model was constructed using Structural Equation Modeling principles, depicting the interrelationships between the latent constructs and indicator items constituting a measurement model and a structural model. Four Hypotheses were framed such that Social Media Usage and eWOM communication have significant positive effect on Student Empowerment. Finally, Confirmatory factor analysis was done to prove the hypotheses and to analyze how well the model fits into the theory. The software IBM SPSS, and AMOS 23 were used to perform multivariate statistical analysis on the LinkedIn Survey response items. Findings: The exploratory study on LinkedIn Usage Survey responses revealed three latent factors that accounted for 69.462 percent of the total variance. The three key factors explaining the eWOM behavior of students in LinkedIn usage were Expert Opinion Seeking, Networking with Professionals and Notification of Profile Changes. The latent factors and associated relationships were used to frame a theoretical model based on SEM techniques. Based on Confirmatory factor analysis done on this model using the data set revealed that the model supported the hypotheses H1, H2, H3 and H4 and all indicators in the model significantly loaded to their respective factors and the predicting variables had a significant positive effect on the predicted variable. The factor loadings were fair to excellent ranging from .634 to .853 and the test for model fitness showed good fitness result based on value of various fitness indices which were within accepted limits. Based on CFA, the important fitness indices and their values arrived at were: CMIN/df = 2.022, NFI = 0.824, TLI = 0.887, RMSEA = 0.098 and CFI = 0.901. Improvements/Applications: The accuracy of the predicting ability of the proposed theoretical model can be improved by augmenting this research study and statistical analysis to be extended to a larger target group belonging to different institutions to achieve good model fit as well as for testing the scalability of the model. As a future work, this model can be integrated with online learning systems also with the aim of improving student engagement in the current online learning scenarios.
机译:背景/目标:近年来,大学生和年轻专业人员对社交网站(如Facebook,LinkedIn等)的使用显着增加。这项研究的重点是确定影响LinkedIn使用和eWOM交流在增强社交联系和学生参与有意义的活动以改善其社会和学术地位方面的作用的关键因素。提出了一种学生社交网络的理论模型,并将本研究的结果和建议实际用于增强学生的能力。方法/统计分析:进行了一项初步调查,以了解年轻的大学生如何使用社交网站LinkedIn,并将回答用于构成问卷。通过收集五点李克特量表的回答,对同一组参与者进行了第二级调查。探索性因素分析是使用LinkedIn调查的响应进行的,以识别与数据集中指标项相关的隐藏因素。随后,使用结构方程建模原理构建了一个理论模型,描述了构成测量模型和结构模型的潜在构造与指标项之间的相互关系。四个假说被设定为使社交媒体使用和eWOM交流对增强学生能力具有明显的积极影响。最后,进行了验证性因素分析以证明假设并分析模型与理论的吻合程度。使用IBM SPSS软件和AMOS 23对LinkedIn Survey响应项执行多元统计分析。结果:LinkedIn使用情况调查问卷的探索性研究发现,三个潜在因素占总方差的69.462%。解释使用LinkedIn的学生的eWOM行为的三个关键因素是专家意见征询,与专业人员联网和个人资料更改通知。潜在因素和相关关系被用来构建基于SEM技术的理论模型。根据使用该数据集对该模型进行的验证性因素分析,结果表明该模型支持假设H1,H2,H3和H4,并且模型中的所有指标均显着加载了其各自的因素,并且预测变量对该模型具有显着的积极影响预测变量。因子负载范围从.634到.853,范围从极好到极好,模型适应性测试基于各种适应性指标的值在可接受的范围内,显示出良好的适应性结果。根据CFA,得出的重要适用性指标及其值分别为:CMIN / df = 2.022,NFI = 0.824,TLI = 0.887,RMSEA = 0.098和CFI = 0.901。改进/应用:可以通过扩大本研究和统计分析的范围,将其扩展到属于不同机构的更大目标群体,以实现良好的模型拟合以及测试可伸缩性,从而提高所提出的理论模型的预测能力的准确性。模型的作为未来的工作,该模型可以与在线学习系统集成,以提高学生在当前在线学习场景中的参与度。

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