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A Dynamic Time Warping Approach to Real-Time Activity Recognition for Food Preparation

机译:一种动态时间翘曲方法对食品准备的实时活动识别

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We present a dynamic time warping based activity recognition system for the analysis of low-level food preparation activities. Accelerometers embedded into kitchen utensils provide continuous sensor data streams while people are using them for cooking. The recognition framework analyzes frames of contiguous sensor readings in real-time with low latency. It thereby adapts to the idiosyncrasies of utensil use by automatically maintaining a template database. We demonstrate the effectiveness of the classification approach by a number of real-world practical experiments on a publically available dataset. The adaptive system shows superior performance compared to a static recognizer. Furthermore, we demonstrate the generalization capabilities of the system by gradually reducing the amount of training samples. The system achieves excellent classification results even if only a small number of training samples is available, which is especially relevant for real-world scenarios.
机译:我们提出了一种动态时间翘曲基于翘曲的活动识别系统,用于分析低级食品制备活动。嵌入厨房用具的加速度计提供连续的传感器数据流,而人们使用它们烹饪。识别框架通过低延迟实时分析了连续传感器读数的帧。因此,它通过自动维护模板数据库来适应器具的特质。我们展示了分类方法对公共可用数据集的一些现实实际实验的有效性。与静态识别器相比,自适应系统显示出优异的性能。此外,我们通过逐渐减少培训样本量来证明系统的泛化能力。该系统即使只有少量训练样本可用,该系统也可以获得出色的分类结果,这与真实世界的情景特别相关。

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