Face image mining using microsoft api service

Human faces do convey a significant amount of information and contained important attributes to perform age related applications. The lack of good public aging face dataset restricts the work in research and development works. In this project, the author presents a new automated, innovative and robu...

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Main Author: Tan, Aloysius Han Tian.
Other Authors: Teoh Eam Khwang
Format: Final Year Project
Language:English
Published: 2011
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Online Access:http://hdl.handle.net/10356/44340
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-443402023-07-07T16:23:39Z Face image mining using microsoft api service Tan, Aloysius Han Tian. Teoh Eam Khwang School of Electrical and Electronic Engineering DRNTU::Engineering Human faces do convey a significant amount of information and contained important attributes to perform age related applications. The lack of good public aging face dataset restricts the work in research and development works. In this project, the author presents a new automated, innovative and robust face image mining application and using API offered by Microsoft Bing Service. The images of interest can be retrieved from the Internet with the different key modules developed by the author. The main contribution towards this project was to develop modules that seek to perform their designed function and implement innovative methods in order for the new application to extensively and accuracy mine for all human face images of all age group over the World Wide Web. The Image Gathering Modules provides features such as an automated mechanism to perform different age related search queries that are pre-constructed in the module to search for all human ages using Bing API. A filtering mechanism was implemented to extensively filter noisy images and to acquire the desirable image information. An Image Extraction Module performs an automation extraction of all relevant images from the Internet, checking for duplication of images and with an additional layer of noise filtering. Lastly a validation module was created for human validation. The user interface created allows users to do selections or update image information based on the different category. A clean human face dataset of all ages can be obtained and be used for age estimation after validation. The application achieved the objective to intensively mine for a large human aging facial dataset with a total of 101k images were collected. This figure can be increase significantly by constructing more search query per age. To increase the accuracy of the relevant images dataset collected, the module can pre-construct a more age specific related search query when perform mining for human face images using the application. Bachelor of Engineering 2011-06-01T02:43:36Z 2011-06-01T02:43:36Z 2011 2011 Final Year Project (FYP) http://hdl.handle.net/10356/44340 en Nanyang Technological University 128 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering
spellingShingle DRNTU::Engineering
Tan, Aloysius Han Tian.
Face image mining using microsoft api service
description Human faces do convey a significant amount of information and contained important attributes to perform age related applications. The lack of good public aging face dataset restricts the work in research and development works. In this project, the author presents a new automated, innovative and robust face image mining application and using API offered by Microsoft Bing Service. The images of interest can be retrieved from the Internet with the different key modules developed by the author. The main contribution towards this project was to develop modules that seek to perform their designed function and implement innovative methods in order for the new application to extensively and accuracy mine for all human face images of all age group over the World Wide Web. The Image Gathering Modules provides features such as an automated mechanism to perform different age related search queries that are pre-constructed in the module to search for all human ages using Bing API. A filtering mechanism was implemented to extensively filter noisy images and to acquire the desirable image information. An Image Extraction Module performs an automation extraction of all relevant images from the Internet, checking for duplication of images and with an additional layer of noise filtering. Lastly a validation module was created for human validation. The user interface created allows users to do selections or update image information based on the different category. A clean human face dataset of all ages can be obtained and be used for age estimation after validation. The application achieved the objective to intensively mine for a large human aging facial dataset with a total of 101k images were collected. This figure can be increase significantly by constructing more search query per age. To increase the accuracy of the relevant images dataset collected, the module can pre-construct a more age specific related search query when perform mining for human face images using the application.
author2 Teoh Eam Khwang
author_facet Teoh Eam Khwang
Tan, Aloysius Han Tian.
format Final Year Project
author Tan, Aloysius Han Tian.
author_sort Tan, Aloysius Han Tian.
title Face image mining using microsoft api service
title_short Face image mining using microsoft api service
title_full Face image mining using microsoft api service
title_fullStr Face image mining using microsoft api service
title_full_unstemmed Face image mining using microsoft api service
title_sort face image mining using microsoft api service
publishDate 2011
url http://hdl.handle.net/10356/44340
_version_ 1772826224535535616