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Computerized Color Separation System for Printed Fabrics by Using Backward-Propagation Neural Network
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  • Computerized Color Separation System for Printed Fabrics by Using Backward-Propagation Neural Network
  • Computerized Color Separation System for Printed Fabrics by Using Backward-Propagation Neural Network
저자명
Kuo. Chung-Feng Jeffrey,Su. Te-Li,Huang. Yi-Jen
간행물명
Fibers and polymers
권/호정보
2007년|8권 5호|pp.529-536 (8 pages)
발행정보
한국섬유공학회
파일정보
정기간행물|ENG|
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이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
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기타언어초록

Textile production must be coupled with hi-tech assistant system to save cost of labor, material, time. Therefore color quality control is one very important step in any textiles, however excellent the fabric material itself is, if it lacks good color, then it may still result in dull sale. Therefore, this paper proposes a printed fabrics computerized color separation system based on backward-propagation neural network, whose primary function is to separate rich color of printed fabrics pattern so as to reduce time-consuming manual color separation color matching of current players. What it adopted was RGB color space, expressed in red, green, and blue. Analyze color features of printed fabrics, use gene algorithm to find sub-image with same color distribution as original image of printed fabrics yet smaller area, for later color separation algorithm use. In terms of color separation algorithm, this paper relied on supervised backward-propagation neural network to conduct color separation of printed fabrics RGB sub-image, and utilized $PANTONE^{(R)}$ standard color ticket to do color matching, so as to realize accurate color separation.