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Assessment of Pain Using Facial Pictures Taken with a Smartphone

机译:使用智能手机拍摄的面部图片评估疼痛

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Timely and accurate information about patients' symptoms is important for clinical decision making such as adjustment of medication. Due to the limitations of self-reported symptom such as pain, we investigated whether facial images can be used for detecting pain level accurately using existing algorithms and infrastructure for cancer patients. For low cost and better pain management solution, we present a smart phone based system for pain expression recognition from facial images. To the best of our knowledge, this is the first study for mobile based chronic pain intensity detection. The proposed algorithms classify faces, represented as a weighted combination of Eigenfaces, using an angular distance, and support vector machines (SVMs). A pain score was assigned to each image by the subject. The study was done in two phases. In the first phase, data were collected as a part of a six month long longitudinal study in Bangladesh. In the second phase, pain images were collected for a cross-sectional study in three different countries: Bangladesh, Nepal and the United States. The study shows that a personalized model for pain assessment performs better for automatic pain assessment and the training set should contain varying levels of pain representing the application scenario.
机译:有关患者症状的及时准确信息对于临床决策(例如调整用药)非常重要。由于自我报告的症状(例如疼痛)的局限性,我们调查了是否可以使用现有的算法和基础设施来针对癌症患者使用面部图像准确地检测疼痛程度。为了提供低成本和更好的疼痛管理解决方案,我们提出了一种基于智能手机的系统,可从面部图像识别疼痛表情。据我们所知,这是基于移动的慢性疼痛强度检测的第一项研究。所提出的算法使用角度距离和支持向量机(SVM)对表示为特征脸的加权组合的脸部进行分类。受试者将疼痛评分分配给每个图像。该研究分两个阶段进行。在第一阶段,数据收集是孟加拉国为期六个月的纵向研究的一部分。在第二阶段,收集了疼痛图像,用于在三个不同国家(孟加拉国,尼泊尔和美国)的横断面研究。研究表明,针对疼痛评估的个性化模型对于自动疼痛评估的效果更好,并且训练集应包含代表应用场景的不同程度的疼痛。

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