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    Human Action Recognition Using Machine Learning

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    BT4189_ETE-Project_Report-1.pdf (591.1Kb)
    Date
    2022-12
    Author
    Prashant Katiyar, 19SCSE1180072
    Kumar Skand Kartik, 19SCSE1180062
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    Abstract
    People with speech disabilities communicate in sign language and therefore have trouble in mingling with the able-bodied. There is a need for an interpretation system which could act as a bridge between them and those who do not know their sign language. A functional unobtrusive Indian sign language recognition system was implemented and tested on real world data. A vocabulary of 26 symbols was collected. The vocabulary consisted mostly of two-handed signs which were drawn from a wide repertoire of words of technical and daily-use origins. Our project aims to create a computer application and train a model which when shown a real time video of hand gestures of Indian Sign Language shows the output for that particular sign in text format on the screen.
    URI
    http://10.10.11.6/handle/1/18089
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    • B.TECH [1324]

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