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Unsupervised Emotional Scene Detection for Lifelog Video Retrieval Based on Gaussian Mixture Model

机译:基于高斯混合模型的LifeLog视频检索无监督的情感场景检测

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摘要

For the purpose of an efficient retrieval of impressive scenes from lifelog videos, we propose an emotional scene detection method based on facial expression recognition. Most of conventional facial expression recognition methods focus on discriminating typical facial expressions such as happiness, sadness and surprise, while lifelog videos contain various facial expressions. In addition, many training examples, which are quite troublesome to prepare, are required to construct the facial expression recognition models. The proposed method tries to solve these problems by constructing a facial expression recognition model using an unsupervised learning based on Gaussian mixture model. Since our model is unsupervised, there is no need for preparing learning examples and predefining the types of facial expressions. The detection performance of the proposed method is evaluated in terms of detection accuracy and efficiency through several emotional scene detection experiments.
机译:为了有效地检索LifeLog视频的令人印象深刻的场景,我们提出了一种基于面部表情识别的情感场景检测方法。传统的面部表情识别方法的重点是鉴别典型的面部表情,例如幸福,悲伤和惊喜,而Lifelog视频包含各种面部表情。此外,许多训练示例是非常麻烦的准备,需要构建面部表情识别模型。所提出的方法试图通过基于高斯混合模型的无监督学习构建面部表情识别模型来解决这些问题。由于我们的模型是无人监督的,因此不需要准备学习示例并预定精制面部表情的类型。通过几种情绪场景检测实验,在检测准确度和效率方面评估所提出的方法的检测性能。

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