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首页> 外文期刊>International journal of intellectual property management >Predicting the value of intellectual capital: a performance contribution model based on neural networks
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Predicting the value of intellectual capital: a performance contribution model based on neural networks

机译:预测知识资本价值:基于神经网络的绩效贡献模型

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摘要

The study aims to predict the value of intellectual capital (IC) based on the performance contribution approach. Theoretically, through the development of a derivative model (DM) that explains the relationship between IC and the firm's performance. The study develops a DM of 16 equations to construct the relationship between the investment in IC and its effectiveness in generating income. This is one of the few studies in predicting IC and the only empirical study applied to UAE listed companies. The study applies the neural network system of 47 firms listed in DFM over five years. The study ranks return on assets, p/e ratio, market value of assets, and return on equity as predictors of IC. It helps managers in predicting and determining investment in IC and its impact on performance. In the future, other than financial factors' need to be included, increase the sample, and conduct research on predicting the components of IC.
机译:该研究旨在根据绩效贡献方法预测知识产权(IC)的价值。 从理论上讲,通过开发衍生模型(DM),解释了IC与公司的表现之间的关系。 该研究开发了16个方程的DM,构建IC投资与其产生收入的有效性之间的关系。 这是少数预测IC的研究之一,也是应用于阿联酋上市公司的唯一实证研究。 该研究适用于五年多的DFM中列出的47家公司的神经网络系统。 该研究排名资产回报,资产的资产,资产的市场价值,以及股权预测因素返回权益。 它有助于管理人员在预测和确定IC投资及其对绩效的影响。 未来,除了财务因素之外,需要包括,增加样本,并进行预测IC组件的研究。

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