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Implementation Of Convolutional Neural Network (CNN) Algorithm For Classification Of Human Facial Expression In Indonesia

机译:卷积神经网络算法在印度尼西亚人脸表情分类中的实现

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Emotional expression is an effort made by someone to communicate the status of feelings or emotions in response to certain situations both internal and external as seen from biological changes, physiological and a series of actions like attitudes and behaviors oriented toward goal-oriented. Although humans can recognize expressions very well, facial recognition research is continuing to improve the quality of expression recognition in human and computer interactions. In this study discusses the detection of human facial expressions using the Convolution Neural Network (CNN) method with the Indonesian Mixed Emotion Dataset (IMED), in this algorithm there are two methods in a series namely convolution as feature extraction and neural network as classification. To facilitate the extraction of features, the researcher does preprocessing. The preprocessing stage is face detection, cropping, resizing and grayscaling. To overcome overfitting, in this study, data augmentation was performed on training data and also test data. The results of experiments in this study that the Convolution Neural Network (CNN) algorithm can recognize human facial expressions with an accuracy rate of 93.63% of the 110 expressions tested.
机译:情感表达是某人为响应某些内部和外部情况而传达的情感或情绪状态的努力,从生物学变化,生理行为和一系列面向目标的行为(如态度和行为)可以看出。尽管人类可以很好地识别表情,但是面部识别研究仍在继续改善人与计算机交互中表情识别的质量。本研究讨论了使用卷积神经网络(CNN)方法和印尼混合情绪数据集(IMED)进行人脸表情检测的方法,该算法有一系列的两种方法,即卷积作为特征提取和神经网络作为分类。为了促进特征的提取,研究人员进行了预处理。预处理阶段是人脸检测,裁剪,调整大小和灰阶处理。为了克服过度拟合,在这项研究中,对训练数据和测试数据进行了数据扩充。本研究的实验结果表明,卷积神经网络(CNN)算法可以识别人类面部表情,其准确率达到了所测试的110种表情的93.63%。

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