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Knowledge Transfer in Software Companies Based on Machine Learning

机译:基于机器学习的软件公司知识转移

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Innovation is a key driver of competitiveness and productivity in today's market. In this scenario, Knowledge is seen as a company's key asset and has become the primary competitive tool for many businesses. However, An efficient knowledge management must face diverse challenges such as the knowledge leakage and the poor coordination of work teams. To address these issues, experts in knowledge management must support organizations to come up with solutions and answers. However, in many cases, the precision and ambiguity of their concepts are not the most appropriate. This article describes a method for the diagnosis and initial assessment of knowledge management. The proposed method uses machine-learning techniques to analyze different aspects and conditions associated with knowledge transfer. Initially, we present a literature review of the common problems in knowledge management. Later, the proposed method and its respective application are exposed. The validation of this method was carried out using data from a group of software companies, and the analysis of the results was performed using Support Vector Machine (SVM).
机译:创新是当今市场竞争力和生产力的关键驱动因素。在这种情况下,知识被视为公司的关键资产,已成为许多企业的主要竞争工具。然而,有效的知识管理必须面临多种挑战,例如知识泄漏和工作团队的不良协调。为了解决这些问题,知识管理的专家必须支持组织提出解决方案和答案。但是,在许多情况下,他们概念的精确度和歧义并不是最合适的。本文介绍了一种诊断和初步评估知识管理的方法。该方法采用机器学习技术来分析与知识转移相关的不同方面和条件。最初,我们提出了对知识管理中常见问题的文献综述。后来,拟议的方法及其各自的应用是暴露的。使用来自一组软件公司的数据进行此方法的验证,使用支持向量机(SVM)进行结果分析。

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