2023
DOI: 10.1007/s10260-023-00696-z
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Improving state estimation through projection post-processing for activity recognition with application to football

Abstract: The past decade has seen an increased interest in human activity recognition based on sensor data. Most often, the sensor data come unannotated, creating the need for fast labelling methods. For assessing the quality of the labelling, an appropriate performance measure has to be chosen. Our main contribution is a novel post-processing method for activity recognition. It improves the accuracy of the classification methods by correcting for unrealistic short activities in the estimate. We also propose a new perf… Show more

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