STEP: Spatial Temporal Graph Convolutional Networks for Emotion Perception from Gaits

Author:

Bhattacharya Uttaran,Mittal Trisha,Chandra Rohan,Randhavane Tanmay,Bera Aniket,Manocha Dinesh

Abstract

We present a novel classifier network called STEP, to classify perceived human emotion from gaits, based on a Spatial Temporal Graph Convolutional Network (ST-GCN) architecture. Given an RGB video of an individual walking, our formulation implicitly exploits the gait features to classify the perceived emotion of the human into one of four emotions: happy, sad, angry, or neutral. We train STEP on annotated real-world gait videos, augmented with annotated synthetic gaits generated using a novel generative network called STEP-Gen, built on an ST-GCN based Conditional Variational Autoencoder (CVAE). We incorporate a novel push-pull regularization loss in the CVAE formulation of STEP-Gen to generate realistic gaits and improve the classification accuracy of STEP. We also release a novel dataset (E-Gait), which consists of 4,227 human gaits annotated with perceived emotions along with thousands of synthetic gaits. In practice, STEP can learn the affective features and exhibits classification accuracy of 88% on E-Gait, which is 14–30% more accurate over prior methods.

Publisher

Association for the Advancement of Artificial Intelligence (AAAI)

Subject

General Medicine

Cited by 45 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. Looking Into Gait for Perceiving Emotions via Bilateral Posture and Movement Graph Convolutional Networks;IEEE Transactions on Affective Computing;2024-07

2. TT-GCN: Temporal-Tightly Graph Convolutional Network for Emotion Recognition From Gaits;IEEE Transactions on Computational Social Systems;2024-06

3. VRMN-bD: A Multi-modal Natural Behavior Dataset of Immersive Human Fear Responses in VR Stand-up Interactive Games;2024 IEEE Conference Virtual Reality and 3D User Interfaces (VR);2024-03-16

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