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Intellectual Property in Colombian Museums: An Application of Machine Learning

机译:哥伦比亚博物馆的知识产权:机器学习的应用

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The purpose of this research is to answer the following guiding question: how can the behavior of museum networks in Colombia be predicted with respect to the protection of intellectual property (copyright, confidential information and use of patents, domain names, industrial designs, use of trademarks) and the interaction of different types of proximity (geographical, organizational, relational, cognitive, cultural and institutional), based on the use of supervised learning algorithms? Among the main findings are that the best learning algorithms to predict the behavior of networks, considering different target variables are the AdaBoost, the naive Bayes and CN2 rule inducer.
机译:本研究的目的是回答以下指导问题:如何在哥伦比亚的博物馆网络对知识产权进行预测(版权,机密信息和专利,域名,工业设计,使用商标)基于使用监督学习算法的不同类型的接近(地理,组织,关系,认知,文化,制度)的互动?在主要结果中,考虑到不同的目标变量是预测网络行为的最佳学习算法是Adaboost,Naive Bayes和CN2规则诱导者。

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