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A novel Markov logic rule induction strategy for characterizing sports video footage

机译:一种新颖的马尔可夫逻辑规则归纳策略,用于表征体育视频素材

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摘要

The grounding of high-level semantic concepts is a key requirement of video annotation systems. Rule induction can thus constitute an invaluable intermediate step in characterizing protocol-governed domains, such as broadcast sports footage. We here set out a novel “clause grammar template” approach to the problem of rule-induction in video footage of court games that employs a second-order meta grammar for Markov Logic Network construction. The aim is to build an adaptive system for sports video annotation capable, in principle, both of learning ab initio and also adaptively transferring learning between distinct rule domains. The method is tested with respect to both a simulated game predicate generator and also real data derived from tennis footage via computer-vision based approaches including HOG3D based player-action classification, Hough-transform based court detection, and graph-theoretic ball-tracking. Experiments demonstrate that the method exhibits both error resilience and learning transfer in the court domain context. Moreover the clause template approach naturally generalizes to any suitably-constrained, protocol-governed video domain characterized by feature noise or detector error.
机译:高级语义概念的基础是视频注释系统的关键要求。因此,规则归纳可以构成表征协议控制域(例如广播体育镜头)的宝贵的中间步骤。我们在这里针对法院游戏视频镜头中的规则归纳问题提出了一种新颖的“子句语法模板”方法,该方法采用了二阶元语法进行马尔可夫逻辑网络构建。目的是建立一种运动视频注解的自适应系统,该系统原则上既可以从头开始学习,又可以在不同的规则域之间自适应地转移学习。该方法针对模拟的游戏谓词生成器以及通过基于计算机视觉的方法(包括基于HOG3D的球员行为分类,基于霍夫变换的球场检测和图论球追踪)从网球镜头得出的真实数据进行了测试。实验表明,该方法在法院领域内既具有抗错能力,又具有学习转移的能力。此外,条款模板方法自然可以推广到以特征噪声或检测器错误为特征的任何适当约束的协议控制视频域。

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