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Knowledge Sharing in Organizations: A Bayesian Analysis of the Role of Reciprocity and Formal Structure

机译:组织中的知识共享:互惠和形式结构作用的贝叶斯分析

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We examine the conditions under •which knowledge embedded in advice relations is likely to reach across intraorganizational boundaries and be shared between distant organizational members. We emphasize boundary-crossing relations because activities of knowledge transfer and sharing across subunit boundaries are systematically related to desirable organizational outcomes. Our main objective is to understand how organizational and social processes interact to sustain the transfer of knowledge carried by advice relations. Using original fieldwork and data that we have collected on members of the top management team in a multiunit industrial group, we show that knowledge embedded in task advice relations is unlikely to crosscut intraorganizational boundaries, unless advice relations are reciprocated, and supported by the presence of hierarchical relations linking managers in different subunits. The results we report are based on a novel Bayesian Exponential Random Graph Models (BERGMs) framework that allows us to test and assess the empirical value of our hypotheses while at the same time accounting for structural characteristics of the intraorganizational network of advice relations. We rely on computational and simulation methods to establish the consistency of the network implied by the model we propose with the structure of the intraorganizational network that we actually observed.
机译:我们研究了以下条件:•嵌入在建议关系中的知识可能会跨越组织内部边界并在遥远的组织成员之间共享。我们强调跨越边界的关系,因为跨子单元边界的知识转移和共享活动与期望的组织成果系统地相关。我们的主要目标是了解组织和社会流程如何相互作用以维持咨询关系所承载的知识转移。使用我们在多部门工业集团的高层管理团队成员中收集到的原始现场调查工作和数据,我们发现,任务咨询关系中所包含的知识不可能跨越组织内部边界,除非咨询关系能够往复并得到存在的支持。链接不同子部门中的经理的层次关系。我们报告的结果基于新颖的贝叶斯指数随机图模型(BERGM)框架,该框架使我们能够测试和评估假设的经验价值,同时考虑到组织内咨询关系网络的结构特征。我们依靠计算和仿真方法来建立所建议的模型所隐含的网络与实际观察到的组织内部网络结构的一致性。

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