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Design and Development of Smart-Jacket for Posture Detection

机译:姿势检测智能夹克的设计与开发

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Complex human activity is hard to classify with observational logic. The advent of fabric sensors with discernible and steady response have opened a new avenue for classifying physical activity of humans. Our goal is to construct a smart jacket for human activity/posture classification and to apply machine learning models on the fabric sensor reading to predict physical events. The core concept is in placing stretch sensors, pressure sensors and accelerometer at strategic location to collect the responses. The sensor's response is studied toidentify linearity and repeatability, using which, reliability of data is determined. Further, appropriate Machine learning algorithms can be employed to classify different set of activities. It also important to follow a proper procedure to record data from fabric sensors which create a voltage fluctuation when stretched. We propose a systematic way of design, development, testing and integration of fabric sensors for reliable data collection in this paper.
机译:复杂的人类活动很难与观察逻辑分类。具有可辨别和稳定响应的织物传感器的出现开辟了分类人类体育活动的新途径。我们的目标是为人类活动/姿势分类构建智能夹克,并在织物传感器读数上应用机器学习模型,以预测物理事件。核心概念在战略位置将拉伸传感器,压力传感器和加速度计放在策略中以收集响应。使用该传感器的响应是研究了线性度和可重复性,确定了数据的可靠性。此外,可以采用适当的机器学习算法来对不同的活动集进行分类。遵循适当的过程也很重要,以从织物传感器记录数据,该织物传感器在拉伸时产生电压波动。我们提出了一种系统的设计,开发,测试和集成的系统传感器,在本文中可靠的数据收集。

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