基于人工神经网络的知识共享采用模型

O. Folorunso, R. Vincent, Adewale Akintayo Ogunde, B. Agboola
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引用次数: 5

摘要

本文利用人工神经网络(ANN)建立了知识共享采用模型(KSAM)。它调查了尼日利亚高等院校学生知识共享的学生感知有用性和收益(PUB)。本研究以技术接受模型(TAM)的定义和相关结构为基础。采用结构化问卷对学生进行调查,并使用SPSS统计工具进行分析;用人工神经网络对结果进行评价。KSAM包括6个构念,分别是感知分享的容易程度(PEOS)、感知有用性和利益(PUB)、感知分享障碍(PBS)、感知分享的外部提示(ECS)、分享态度(ATT)和行为分享意愿(BIS)。结果表明,为了有效地提高知识共享在该领域的采用,必须提高学生的PUB。本文还发现了知识共享的诸多局限性,并发现利用人工神经网络利用KSAM是可行的。这项研究的发现可能成为进一步研究的基础。
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Knowledge Sharing Adoption Model Based on Artificial Neural Networks
Knowledge Sharing Adoption Model called (KSAM) was developed in this paper using Artificial Neural Networks (ANN). It investigated students’ Perceived Usefulness and Benefits (PUB) of Knowledge Sharing among students of higher learning in Nigeria. The study was based on the definition as well as on the constucts related to technology acceptance model (TAM). A survey was conducted using structured questionnaire administered among students and analysed with SPSS statistical tool; the results were evaluated using ANN. The KSAM includes six constucts that include Perceived Ease Of Sharing (PEOS), Perceived Usefulness and Benefits (PUB), Perceived Barriers for Sharing (PBS), External Cues to Share (ECS), Attitude Towards Sharing (ATT), and Behavioral Intention to Share (BIS). The result showed that Students’ PUB must be raised in order to effectively increase the adoption of Knowledge Sharing in this domain. The paper also identified a myriad of limitations in knowledge sharing and discovered that the utilization of KSAM using ANN is feasible. Findings from this study may form the bedrock on which further studies can be built.
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