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Dynamic Hand Gesture Recognition Using 3DCNN and LSTM with FSM Context-Aware Model

机译:使用3DCNN和LSTM具有FSM上下文感知模型的动态手势识别

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摘要

With the recent growth of Smart TV technology, the demand for unique and beneficial applications motivates the study of a unique gesture-based system for a smart TV-like environment. Combining movie recommendation, social media platform, call a friend application, weather updates, chatting app, and tourism platform into a single system regulated by natural-like gesture controller is proposed to allow the ease of use and natural interaction. Gesture recognition problem solving was designed through 24 gestures of 13 static and 11 dynamic gestures that suit to the environment. Dataset of a sequence of RGB and depth images were collected, preprocessed, and trained in the proposed deep learning architecture. Combination of three-dimensional Convolutional Neural Network (3DCNN) followed by Long Short-Term Memory (LSTM) model was used to extract the spatio-temporal features. At the end of the classification, Finite State Machine (FSM) communicates the model to control the class decision results based on application context. The result suggested the combination data of depth and RGB to hold 97.8% of accuracy rate on eight selected gestures, while the FSM has improved the recognition rate from 89% to 91% in a real-time performance.
机译:随着近期智能电视技术的增长,对独特和有益的应用的需求激发了一种基于智能电视环境的独特手势的系统的研究。组合电影推荐,社交媒体平台,致电朋友应用程序,天气更新,聊天应用以及旅游平台进入由自然的手势控制器调节的单个系统,以允许易用和自然相互作用。手势识别问题解决是通过24个静态和11个动态手势设计的,适合环境。在提出的深度学习架构中收集,预处理和培训了一系列RGB和深度图像的数据集。三维卷积神经网络(3DCNN)的组合,然后是长短期内存(LSTM)模型用于提取时空特征。在分类结束时,有限状态机(FSM)将模型传达以基于应用程序上下文控制类别决策结果。结果表明深度和RGB的组合数据在八个选定的手势上保持97.8%的精度率,而FSM在实时性能中将识别率提高了89%至91%。

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