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Fast Detection of Independent Motion in Crowds Guided by Supervised Learning

机译:监督学习指导下的人群独立运动快速检测

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Different from appearance-based methods, clustering feature points only by their motion coherence is an emerging category of approach to detecting and tracking individuals among crowds. This paper reformalizes the problem and models a novel objective function for clustering with potential functions as in conditional random field approach. The merits include: 1) it integrates motion, spatial, temporal information; 2) the parameters are automatically obtained by supervised learning; 3) the objective function is based on feature-pair information, which enables effective learning on small amount of training data, as well as very fast online processing speed. Detection ROC curves are given on several datasets (including the CAVIAR set).
机译:与基于外观的方法不同,仅通过特征点的运动连贯性对特征点进行聚类是在人群中检测和跟踪个体的一种新兴方法。与条件随机场方法一样,本文对问题进行了重新格式化,并为具有潜在功能的聚类建立了新的目标函数模型。其优点包括:1)整合了运动,空间,时间信息; 2)通过监督学习自动获取参数; 3)目标功能基于特征对信息,可以对少量训练数据进行有效学习,并具有非常快的在线处理速度。在多个数据集(包括CAVIAR集)上给出了检测ROC曲线。

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