Parallel Designs of Background Subtraction and Template Matching Modules for Video Objects Tracking
碩士 === 逢甲大學 === 資訊工程學系 === 104 === In recent years, the technology and application of the Internet of Things (IoT) become more and more popular. Everything can connect with each other on the network. Especially for IP cameras, automatic image analysis, object recognition and objects tracking become...
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ndltd-TW-104FCU053920272019-05-15T23:09:27Z http://ndltd.ncl.edu.tw/handle/ag232h Parallel Designs of Background Subtraction and Template Matching Modules for Video Objects Tracking 專為影像物件追蹤設計之背景相減與樣本比對模組平行化設計 Yu Shun Wang 王裕順 碩士 逢甲大學 資訊工程學系 104 In recent years, the technology and application of the Internet of Things (IoT) become more and more popular. Everything can connect with each other on the network. Especially for IP cameras, automatic image analysis, object recognition and objects tracking become more and more commonplace. With the advance of science and technology, resolution of the captured image is increasingly high. Therefore, how to real-time process images has become an important issue. In the thesis, we design two efficient intelligent identification libraries to process image recognition and objects tracking. We take two frequently used algorithms, Background Subtraction and Template Matching, as the basic approaches in the library. Then, we integrate some complex but frequently used features with these two approaches. In addition, we also enhance the performance of these two libraries by parallel computing technologies including OpenCL, GPU, multi-threading programming. Users can develop image recognition and objects tracking applications more easily and efficiently using the proposed modules. 張貴忠 2016 學位論文 ; thesis 33 en_US |
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碩士 === 逢甲大學 === 資訊工程學系 === 104 === In recent years, the technology and application of the Internet of Things (IoT) become more and more popular. Everything can connect with each other on the network. Especially for IP cameras, automatic image analysis, object recognition and objects tracking become more and more commonplace. With the advance of science and technology, resolution of the captured image is increasingly high. Therefore, how to real-time process images has become an important issue.
In the thesis, we design two efficient intelligent identification libraries to process image recognition and objects tracking. We take two frequently used algorithms, Background Subtraction and Template Matching, as the basic approaches in the library. Then, we integrate some complex but frequently used features with these two approaches. In addition, we also enhance the performance of these two libraries by parallel computing technologies including OpenCL, GPU, multi-threading programming. Users can develop image recognition and objects tracking applications more easily and efficiently using the proposed modules.
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張貴忠 |
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張貴忠 Yu Shun Wang 王裕順 |
author |
Yu Shun Wang 王裕順 |
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Yu Shun Wang 王裕順 Parallel Designs of Background Subtraction and Template Matching Modules for Video Objects Tracking |
author_sort |
Yu Shun Wang |
title |
Parallel Designs of Background Subtraction and Template Matching Modules for Video Objects Tracking |
title_short |
Parallel Designs of Background Subtraction and Template Matching Modules for Video Objects Tracking |
title_full |
Parallel Designs of Background Subtraction and Template Matching Modules for Video Objects Tracking |
title_fullStr |
Parallel Designs of Background Subtraction and Template Matching Modules for Video Objects Tracking |
title_full_unstemmed |
Parallel Designs of Background Subtraction and Template Matching Modules for Video Objects Tracking |
title_sort |
parallel designs of background subtraction and template matching modules for video objects tracking |
publishDate |
2016 |
url |
http://ndltd.ncl.edu.tw/handle/ag232h |
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