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HIDDEN MARKOV BASED LIPS TRACKING TO PREDICT URDU ALPHABETS

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dc.contributor.author Kamal, Mujtaba
dc.contributor.author Wahid, Humayun
dc.contributor.author Amin, Mussafa
dc.date.accessioned 2020-11-28T01:31:36Z
dc.date.available 2020-11-28T01:31:36Z
dc.date.issued 2017
dc.identifier.uri http://hdl.handle.net/123456789/10372
dc.description Supervised by Azmat Khan en_US
dc.description.abstract Lip reading is a technique which is used to understand or interpret speech without hearing it, this technique is especially for people who faces hearing difficulties. The ability to communicate easily to everyone is a blessing with hearing impairment do not have they completely depend on vision around their and faces difficulties in lip reading. For this reason our research work is another step to create solution of this problem. The ability to lip read enables a person with a hearing impairment to communicate with others and to engage in social activities, which otherwise would be difficult. Recent advances in the fields of computer vision, pattern recognition, and signal processing has led to a growing interest in automating this challenging task of lip reading. Indeed, automating the human ability to lip read, a process referred to as visual speech recognition, could open the door for other novel applications. This report investigates various issues faced by a research-oriented speech recognition system based on “Recognize word which is spoken”. The research is for Urdu language alphabets that are recognize by number video analysis and motion estimation in which system can detect lips movements that resemble utterances, and then converts it to readable characters. The algorithm on which we are working is based on dividing the video into n number of frames to generate n-I image frame which is produced by taking the difference between consecutive frames. Then, video features are extracted to be used by function which provided recognition of approximately. The traditional approaches to automatic lip reading are based on lips pattern (mouth shapes (or appearances) or sequences of lips dynamics that are required to generate a phoneme in the visual domain). However, several problems arise in recognition lip patterns such as the different style of pronunciation, Gender style of pronouncing URDU ALPHABETS, these problems contribute to the bad performance ofthe traditional approaches so we conclude to not work on Hidden Markov model and choose visemes instead. our errorThe proposed approach consists oftwo major stages: the first one is the training sub system which is used by administrator (trainer). The other one is the recognition sub system which is used by any user. For this purpose we collect database (a video database, which was recorded using a personal digital assistant camera, contains number of video clips of 12 subjects uttering of both male and female indoor/ lighting conditions) en_US
dc.language.iso en_US en_US
dc.publisher Bahria University Karachi Campus en_US
dc.relation.ispartofseries BS CS;MFN BSCS 71
dc.title HIDDEN MARKOV BASED LIPS TRACKING TO PREDICT URDU ALPHABETS en_US
dc.type Thesis en_US


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