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Modeling patent legal value by Extension Neural Network

机译:通过扩展神经网络建模专利法律价值

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摘要

This study aimed at the basis of patent law and proposed a revolutionary valuation model for the monetary legal value of patents. The damage award of a patent infringement lawsuit was deemed to be the legal value of a patent. Sixty-five effective samples were extracted from 4289 patent related lawsuits retrieved in US district courts of Delaware, California and Texas. Seventeen quantitative patent indicators for describing dimensions of patents were summarized. The Extension Neural Network incorporated with the factor analysis was applied to construct the valuation model of patent indicators and damage awards. The proposed valuation model was validated to have the predictive power by error analysis and was accommodated to valuate the possible damage award or to negotiate the settlement fee in disputing patent infringement suits. It also contributed to patent transaction deal, patent licensing, hypothecation of intangible assets, and shareholding by patent-based technologies, etc.
机译:这项研究针对专利法的基础,并提出了一种革命性的专利货币法律价值评估模型。专利侵权诉讼的损害赔偿金被视为专利的法律价值。从美国特拉华州,加利福尼亚州和德克萨斯州地方法院提起的4289项与专利相关的诉讼中提取了65个有效样本。总结了用于描述专利规模的十七项定量专利指标。结合因子分析的扩展神经网络被用于构建专利指标和损害赔偿的评估模型。通过误差分析验证了所提出的估值模型具有预测能力,并被用于评估可能的损害赔偿金或就专利侵权诉讼的争议进行和解费用谈判。它还为专利交易交易,专利许可,无形资产的假设以及基于专利的技术的股权等做出了贡献。

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