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Detection of in-progress phone calls using smartphone proximity and orientation sensors

机译:使用智能手机接近度和方向传感器检测正在进行的电话呼叫

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摘要

Smartphones are equipped with embedded sensors, which have been widely used for human activity recognition, context monitoring, and localisation. In this paper, we use smartphone sensors to detect in-progress phone calls and classify the caller's activity states. Phone call detection has a number of practical uses: it can be used to monitor activities at places where calls are forbidden and it can be used to assist activity recognition schemes. We propose a real-time phone call detection scheme using smartphone proximity and orientation sensor data and design Android applications to record, upload and display sensor data. We classify the caller's activity states into three categories: sitting/standing, lying down, and walking. Features are extracted from proximity and orientation sensors to train classifiers using different classification algorithms (Naive bayes, logistic regression, and support vector machine). Experiments show our system achieves an overall accuracy of 91% in successfully detecting and classifying phone calls.
机译:智能手机配备嵌入式传感器,已广泛用于人类活动识别,上下文监测和本地化。在本文中,我们使用智能手机传感器来检测正在进行的电话呼叫并分类来电者的活动状态。电话检测有许多实用用途:它可用于监控禁止呼叫的地方的活动,它可用于协助活动识别方案。我们提出了一种使用智能手机接近和方向传感器数据的实时电话检测方案,并设计Android应用程序来记录,上载和显示传感器数据。我们将呼叫者的活动状态分为三类:坐/站立,躺下和走路。从接近度和取向传感器中提取特征,以使用不同的分类算法(天真凸起,逻辑回归和支持向量机)培训分类器。实验表明,我们的系统成功检测和分类电话的整体准确性为91%。

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