A New Hybrid Approach for Efficient Emotion Recognition using Deep Learning

Author:

Rahul Mayur1,Tiwari Namita2,Shukla Rati3,Tyagi Devvrat4,Yadav Vikash5

Affiliation:

1. AP, DoCA, UIET, CSJM Univ., Kanpur, UP, India

2. AP, DoM, SoS, CSJM Univ., Kanpur, UP, India

3. MNNIT, Prayagraj, Allahabad, UP, India

4. AP, ABES Engg. College, Ghaziabad, UP, India

5. Lec., DoTE, UP, India

Abstract

Facial emotion recognition has been very popular area for researchers in last few decades and it is found to be very challenging and complex task due to large intra-class changes. Existing frameworks for this type of problem depends mostly on techniques like Gabor filters, principle component analysis (PCA), and independent component analysis(ICA) followed by some classification techniques trained by given videos and images. Most of these frameworks works significantly well image database acquired in limited conditions but not perform well with the dynamic images having varying faces and images. In the past years, various researches have been introduced framework for facial emotion recognition using deep learning methods. Although they work well, but there is always some gap found in their research. In this research, we introduced hybrid approach based on RNN and CNN which are able to retrieve some important parts in the given database and able to achieve very good results on the given database like EMOTIC, FER-13 and FERG. We are also able to show that our hybrid framework is able to accomplish promising accuracies with these datasets.

Publisher

FOREX Publication

Subject

General Earth and Planetary Sciences,General Environmental Science

Cited by 12 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Facial Expression-Based Emotion Recognition: Analysing Human Affect through Facial Cues;2023 First International Conference on Advances in Electrical, Electronics and Computational Intelligence (ICAEECI);2023-10-19

2. Revolutionizing sentiment classification: A deep learning approach using self-attention based encoding–decoding transformers with feature fusion;Engineering Applications of Artificial Intelligence;2023-10

3. EmoLens: Pupil Diameter-based Emotion Classification using CNN and RF Algorithms;2023 Second International Conference on Augmented Intelligence and Sustainable Systems (ICAISS);2023-08-23

4. Facial Expression Recognition with CNN-SVM for Emotional State Classification;2023 7th International Conference On Computing, Communication, Control And Automation (ICCUBEA);2023-08-18

5. A novel driver emotion recognition system based on deep ensemble classification;Complex & Intelligent Systems;2023-06-07

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