Emotion recognition using machine learning techniques for robots

Emotion Recognition is one of the classification tasks in the computer vision, carrying interactive communication between human and machines. This project aims to set up an emotion recognition system in a household robot. The recognition system is realized by balancing the factors in terms of hardw...

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Main Author: Wang, Yiming
Other Authors: Huang Guangbin
Format: Final Year Project
Language:English
Published: 2017
Subjects:
Online Access:http://hdl.handle.net/10356/70949
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-709492023-07-07T15:42:48Z Emotion recognition using machine learning techniques for robots Wang, Yiming Huang Guangbin School of Electrical and Electronic Engineering DRNTU::Engineering::Electrical and electronic engineering Emotion Recognition is one of the classification tasks in the computer vision, carrying interactive communication between human and machines. This project aims to set up an emotion recognition system in a household robot. The recognition system is realized by balancing the factors in terms of hardware constraint and recognition accuracy. More specifically, the household robot is supposed to conduct a few tasks but within a limited 2GB memory space, therefore, the software must be designed memory-compactly. As for the real-time test using a webcam, the model first tries to capture faces in a video frame by using the HOG feature face detector, then it applies several preprocessing techniques such as Gaussian blurring, adaptive histogram equalization and mean- subtraction to the face and then sends it to the pre-trained smaller AlexNet model for the recognition task. The test accuracy of the model reaches 0.71 and the highest recognition rate reaches 0.90 for a happy face on FER-2013 test set. Bachelor of Engineering 2017-05-12T04:55:33Z 2017-05-12T04:55:33Z 2017 Final Year Project (FYP) http://hdl.handle.net/10356/70949 en Nanyang Technological University 64 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Electrical and electronic engineering
spellingShingle DRNTU::Engineering::Electrical and electronic engineering
Wang, Yiming
Emotion recognition using machine learning techniques for robots
description Emotion Recognition is one of the classification tasks in the computer vision, carrying interactive communication between human and machines. This project aims to set up an emotion recognition system in a household robot. The recognition system is realized by balancing the factors in terms of hardware constraint and recognition accuracy. More specifically, the household robot is supposed to conduct a few tasks but within a limited 2GB memory space, therefore, the software must be designed memory-compactly. As for the real-time test using a webcam, the model first tries to capture faces in a video frame by using the HOG feature face detector, then it applies several preprocessing techniques such as Gaussian blurring, adaptive histogram equalization and mean- subtraction to the face and then sends it to the pre-trained smaller AlexNet model for the recognition task. The test accuracy of the model reaches 0.71 and the highest recognition rate reaches 0.90 for a happy face on FER-2013 test set.
author2 Huang Guangbin
author_facet Huang Guangbin
Wang, Yiming
format Final Year Project
author Wang, Yiming
author_sort Wang, Yiming
title Emotion recognition using machine learning techniques for robots
title_short Emotion recognition using machine learning techniques for robots
title_full Emotion recognition using machine learning techniques for robots
title_fullStr Emotion recognition using machine learning techniques for robots
title_full_unstemmed Emotion recognition using machine learning techniques for robots
title_sort emotion recognition using machine learning techniques for robots
publishDate 2017
url http://hdl.handle.net/10356/70949
_version_ 1772827279071641600