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Sign language is an important communication tool for deaf and hard of hearing (DHH) people.But their differences and differences lead to better communication and accessibility.To this end, the program aims to promote advances in computer vision and machine learning to train linguists.The system uses convolutional neural networks (CNN) to analyze video input and capture subtle changes and movements present in the language.The model achieves high performance and accuracy in recognition through extensive training on a variety of data sources containing multiple languages and languages.Gesture segmentation involves breaking down a gesture into a series of gestures, allowing complex sentences to be completed.Feature extraction focuses on capturing spatial and temporal information from movements, facilitating the recognition and interpretation of patterns.Classification involves mapping features into corresponding representations, thereby translating them into text or speech.Tools and infrastructure that facilitate the use of digital content.The system promotes access to information and equal communication through the communication gap between signers and non-signers.
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