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首页> 外文期刊>Biomedical and Health Informatics, IEEE Journal of >Food Intake Monitoring: Automated Chew Event Detection in Chewing Sounds
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Food Intake Monitoring: Automated Chew Event Detection in Chewing Sounds

机译:食品摄入量监控:咀嚼声音中的自动咀嚼事件检测

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摘要

The analysis of the food intake behavior has the potential to provide insights into the development of obesity and eating disorders. As an elementary part of this analysis, chewing strokes have to be detected and counted. Our approach for food intake analysis is the evaluation of chewing sounds generated during the process of eating. These sounds were recorded by microphones applied to the outer ear canal of the user. Eight different algorithms for automated chew event detection were presented and evaluated on two datasets. The first dataset contained food intake sounds from the consumption of six types of food. The second dataset consisted of recordings of different environmental sounds. These datasets contained 68 094 chew events in around 18 h recording data. The results of the automated chew event detection were compared to manual annotations. Precision and recall over 80% were achieved by most of the algorithms. A simple noise reduction algorithm using spectral subtraction was implemented for signal enhancement. Its benefit on the chew event detection performance was evaluated. A reduction of the number of false detections by 28% on average was achieved by maintaining the detection performance. The system is able to be used for calculation of the chewing frequency in laboratory settings.
机译:对食物摄入行为的分析有可能为肥胖和饮食失调的发展提供见解。作为此分析的基本部分,必须检测并计算咀嚼次数。我们用于食物摄入量分析的方法是评估进食过程中产生的咀嚼声音。这些声音由应用到用户外耳道的麦克风记录。提出了八种不同的自动咀嚼事件检测算法,并在两个数据集上进行了评估。第一个数据集包含来自六种食物消耗的食物摄入声音。第二个数据集由不同环境声音的录音组成。这些数据集在约18 h的记录数据中包含68 094次咀嚼事件。将自动咀嚼事件检测的结果与手动注释进行比较。大多数算法可实现80%以上的精度和召回率。使用频谱减法的简单降噪算法已实现用于信号增强。评价了其对咀嚼事件检测性能的益处。通过保持检测性能,平均可将错误检测的次数减少28%。该系统能够用于实验室设置中的咀嚼频率的计算。

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