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首页> 外文期刊>IEICE transactions on information and systems >Food Intake Detection and Classification Using a Necklace-Type Piezoelectric Wearable Sensor System
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Food Intake Detection and Classification Using a Necklace-Type Piezoelectric Wearable Sensor System

机译:使用项链型压电可穿戴传感器系统进行食物摄入检测和分类

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Automatic monitoring of food intake in free living conditions is still an open problem to solve. This paper presents a novel necklace-type wearable system embedded with a piezoelectric sensor to monitor ingestive behavior by detecting skin motion from the lower trachea. Detected events are incorporated for food classification. Unlike the previous state-of-the-art piezoelectric sensor based system that employs spectrogram features, we have tried to fully exploit time-domain based signals for optimal features. Through numerous evaluations on the length of a frame, we have found the best performance with a frame length of 70 samples (3.5 seconds). This demonstrates that the chewing sequence carries important information for food classification. Experimental results show the validity of the proposed algorithm for food intake detection and food classification in real-life scenarios. Our system yields an accuracy of 89.2% for food intake detection and 80.3% for food classification over 17 food categories. Additionally, our system is based on a smartphone app, which helps users live healthy by providing them with real-time feedback about their ingested food episodes and types.
机译:自由生活条件下食物摄入量的自动监测仍然是一个尚待解决的问题。本文提出了一种新型的项链型可穿戴系统,该系统内置有压电传感器,可通过检测下气管的皮肤运动来监测食入行为。将检测到的事件合并到食品分类中。与以前的采用频谱图功能的基于压电传感器的先进系统不同,我们试图充分利用基于时域的信号来获得最佳功能。通过对帧长度的大量评估,我们发现帧长度为70个样本(3.5秒)时表现最佳。这表明咀嚼顺序携带着重要的食物分类信息。实验结果表明,该算法在现实生活中对食物摄入量和食物分类的有效性。我们的系统在17种食物类别中的食物摄入检测准确度为89.2%,食物分类的准确度为80.3%。此外,我们的系统基于智能手机应用程序,该应用程序通过向用户提供有关其所摄入食物的发作和类型的实时反馈来帮助用户健康生活。

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