首页> 外文期刊>Advances in Econometrics >CITY AND INDUSTRY NETWORK IMPACTS ON INNOVATION BY CHINESE MANUFACTURING FIRMS: A HIERARCHICAL SPATIAL-INTERINDUSTRY MODEL
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CITY AND INDUSTRY NETWORK IMPACTS ON INNOVATION BY CHINESE MANUFACTURING FIRMS: A HIERARCHICAL SPATIAL-INTERINDUSTRY MODEL

机译:中国制造业企业对创新的城市和产业网络影响:空间产业间的分层模型

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We are interested in modeling the impact of spatial and interindustry dependence on firm-level innovation of Chinese firms The existence of network ties between cities imply that changes taking place in one city could influence innovation by firms in nearby cities (local spatial spillovers) , or set in motion a series of spatial diffusion and feedback impacts across multiple cities (global spatial spillovers). We use the term local spatial spillovers to reflect a scenario where only immediately neighboring cities are impacted, whereas the term global spatial spillovers represent a situation where impacts fall on neighboring cities, as well as higher order neighbors (neighbors to the neighboring cities, neighbors to the neighbors of the neighbors, and so on). Global spatial spillovers also involve feedback impacts from neighboring cities, and imply the existence of a wider diffusion of impacts over space (higher order neighbors). Similarly, the existence of national interindustry input-output ties implies that changes occurring in one industry could influence innovation by firms operating in directly related industries (local interindustry spillovers), or set in motion a series of in interindustry diffusion and feedback impacts across multiple industries (global interindustry spillovers). Typical linear models of firm-level innovation based on knowledge production functions would rely on city- and industry-specific fixed effects to allow for differences in the level of innovation by firms located in different cities and operating in different industries. This approach however ignores the fact that, spatial dependence between cities and interindustry dependence arising from input-output relationships, may imply interaction, not simply heterogeneity across cities and industries. We construct a Bayesian hierarchical model that allows for both city- and industry-level interaction (global spillovers) and subsumes other innovation scenarios such as: (1) heterogeneity that implies level differences (fixed effects) and (2) contextual effects that imply local spillovers as special cases.
机译:我们有兴趣对空间和行业间依赖性对中国企业的公司级创新的影响进行建模。城市之间存在网络联系意味着一个城市中发生的变化可能会影响附近城市的企业的创新(局部空间溢出),或者推动多个城市之间的一系列空间扩散和反馈影响(全球空间溢出)。我们使用术语“局部空间溢出”来反映仅直接邻近城市受到影响的情况,而术语“全球空间溢出”则表示一种影响落在邻近城市以及较高邻域(邻近城市的邻居,邻近城市的邻居,邻居的邻居,依此类推)。全球空间溢出还涉及邻近城市的反馈影响,这意味着影响在空间(高阶邻居)中的分布范围更广。同样,国家间行业投入产出关系的存在意味着一个行业中发生的变化可能会影响直接相关行业中的公司的创新(本地行业间溢出效应),或者推动跨多个行业的一系列行业间扩散和反馈影响(全球行业间溢出)。基于知识生产函数的企业级创新的典型线性模型将依赖于特定于城市和行业的固定效应,以允许位于不同城市,经营不同行业的企业的创新水平存在差异。但是,这种方法忽略了以下事实:城市之间的空间依赖性和投入产出关系引起的行业间依赖性可能意味着相互作用,而不仅仅是城市和行业之间的异质性。我们构建了一个贝叶斯层次模型,该模型允许城市和行业级别的交互(全球溢出),并包含其他创新方案,例如:(1)隐含着层次差异的固定性(固定效应)和(2)隐含局部性的上下文效应作为特殊情况的溢出。

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