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Collection and curation of a large reference dataset for activity recognition

机译:用于活动识别的大参考数据集的集合和策划

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The field of research on activity recognition is relatively young compared to others, like computer vision. In more mature fields, algorithms are usually tested on standardized, reference datasets. This way, algorithms coming from different groups can be tested in a fair manner, which accelerates the process of developing new knowledge. Collecting a reference dataset under realistic settings for activity recognition poses many challenges due to the large amount of sensors and sensor modalities which are needed to provide a sufficiently complete playground. We here report on some lessons learned while collecting such a reference dataset with a heterogeneous setup. We argue for the importance of a few principles to obtain a clean dataset, starting from the sampling and acquisition, down to the synchronization and labeling of the data.
机译:与其他计算机视觉相比,活动识别研究领域相对年轻。在更成熟的字段中,通常在标准化的参考数据集上测试算法。这样,来自不同群体的算法可以以公平的方式进行测试,从而加速了开发新知识的过程。在现实设置下收集参考数据集以进行活动识别,由于提供了提供了足够完整的操场所需的传感器和传感器方式,因此由于大量传感器和传感器方式构成了许多挑战。我们在这里报告了一些经验教训,同时使用异构设置收集此类参考数据集。我们争论少数原则来获取清洁数据集,从采样和采集开始,下降到数据的同步和标记。

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