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Indonesian Sign Language Converter Into Text And Voice As Social Interaction Tool For Inclusion Student In Vocational High Schools


This purpose study is to assist the social interaction of deaf and dumb inclusion students with normal students and teachers in vocational education using a converter equipped with a Time of Flight (ToF) and infrared camera sensor and an extreme learning machine (ELM) algorithm. The conversion method uses the following processes: (i) Pre-Processing, (ii) 3D and 2D Segmentation, (iii) 3D and 2D Extraction, (iv) Hand Gesture Recognition Data Processing, (v) Pattern Recognition, and (vi) Pattern to Text and Voice Convert. The Indonesian sign language for social interaction tested has 11 words. The experimental demonstration was carried out with the help of an artificial network ELM algorithm that uses a hidden layer of feedforward Neural networks. The ELM parameters consist of: (i) hand position data in x, y, z, (2) data rotation, (iii) finger detection in x, y, z, (iv) extended finger position, and (v) non-extended finger position. Test results in the form of ELM parameters of 11 words in the form of data showing that the conversion of each language used into text and sound that is tested by ELM with the time of flight and infrared cameras has a success rate where students can socially interact with normal students and teachers in public schools vocational.
Andriana - Personal Name
Ike Yuni Wulandari - Personal Name
Budi Mulyanti - Personal Name
Isma Widiaty - Personal Name
Zurkarnain - Personal Name
Special Issue, Desember 2021 18 -25
600
Text
English
Journal of Engineering Science and Technology
2021
Tailor\'s University
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APA Citation
Andriana. (2021).Indonesian Sign Language Converter Into Text And Voice As Social Interaction Tool For Inclusion Student In Vocational High Schools.(Electronic Thesis or Dissertation). Retrieved from https://localhost/etd