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Research on the characteristics of evolution in knowledge flow networks of strategic alliance under different resource allocation

机译:不同资源配置下战略联盟知识流网络演化特征研究

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This paper takes the four types of resource allocation (randomly oriented, relationship-oriented, cooperation oriented, and knowledge-embedded) as its premise and investigates the complex characteristics of knowledge flow network evolution in strategic alliances, taking into account the mutual variance effects of the evolution mechanism. Existing research has neglected the differences in resource allocation types, by and large employed statistical analysis methods, and identified only the linear relationships among experimental variances of cross-sectional data. The present study differs from existing research in the following ways: First, we thoroughly consider the multi-faceted nature of resource allocation. Second, we use the method of multi-agent imitation according to perspective of dynamic system evolution and the principle of phase theory, allowing the explicitly analysis of nonlinear functional logic, forms and patterns in the variance. Finally, we analyze the appropriateness of different resource allocation models. Our paper features several significant findings: (1) The evolution of the knowledge flow network of a strategic alliance can produce a bifurcation phenomenon composed of saddle-node bifurcation and transcritical bifurcation. (2) The number of nodes exhibits a logarithmic growth distribution, the connection intensity and the network gain exhibit exponential growth distributions, and the connectivity and knowledge flow frequency are mutually influential in the form of a power function. (3) Knowledge-embedded resource allocation is most effective for improving the knowledge flow rate of networks and can further supply ample impetus for evolution. (4) Cooperation-oriented resource allocation is most beneficial for quickly propelling the network into the evolution realm. (5) Relationship-oriented resource allocation can aid the network in capturing more profit. Furthermore, this research is beneficial for understanding the key problems of each resource allocation model and the evolution of strategic alliance in knowledge flow networks. Our proposed methods and framework can be more widely applied to the fields of complex networks, knowledge management, and strategic innovation. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本文以资源分配的四种类型(随机导向,关系导向,合作导向和知识嵌入)为前提,并研究了战略联盟中知识流网络演化的复杂特征,同时考虑了战略联盟的相互差异效应。进化机制。现有的研究忽略了资源分配类型的差异,并且大体上采用了统计分析方法,并且仅确定了横截面数据的实验方差之间的线性关系。本研究与现有研究在以下方面有所不同:首先,我们彻底考虑了资源分配的多面性。其次,根据动态系统演化的观点和相位理论的原理,使用多主体模仿的方法,可以明确分析方差中的非线性功能逻辑,形式和模式。最后,我们分析了不同资源分配模型的适用性。本文的主要发现有以下几个方面:(1)战略联盟知识流网络的演化会产生由鞍节点分叉和跨临界分叉组成的分叉现象。 (2)节点数呈对数增长分布,连接强度和网络增益呈指数增长分布,连通性和知识流频率以幂函数形式相互影响。 (3)知识嵌入式资源分配对于提高网络的知识流率是最有效的,并且可以进一步为发展提供充足的动力。 (4)面向合作的资源分配对于快速将网络推进到演进领域最有利。 (5)面向关系的资源分配可以帮助网络获取更多利润。此外,该研究对于理解每种资源分配模型的关键问题以及知识流网络中战略联盟的演变是有益的。我们提出的方法和框架可以更广泛地应用于复杂网络,知识管理和战略创新领域。 (C)2017 Elsevier Ltd.保留所有权利。

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