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Classification of Bamboo Species by Fourier and Legendre Moment

첫 페이지 보기
  • 발행기관
    보안공학연구지원센터(IJAST) 바로가기
  • 간행물
    International Journal of Advanced Science and Technology 바로가기
  • 통권
    Vol.50 (2013.01)바로가기
  • 페이지
    pp.61-70
  • 저자
    Krishna Singh, Indra Gupta, Sangeeta Gupta
  • 언어
    영어(ENG)
  • URL
    https://www.earticle.net/Article/A206857

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원문정보

초록

영어
Bamboo has being widely used as building material throughout the world. From traditional buildings to innovative architectural projects, bamboo has shown its suitability based on a combined low weight, high strength, beauty and durability. The properties of these species vary significantly. A successful application of bamboo in engineering firstly relies on the selection of a correct species. Therefore recognition of bamboo species is necessary before its efficient utilization. Species level identification of bamboos is a highly technical job done primarily by a systematic botanist based on morphological characteristics. However, recognition of the same can also be performed by computer. The bamboo Culm sheath shapes provide valuable data in identification of bamboo species. Automated recognition of bamboo has not yet been well established mainly due to lack of research in this area, non-availability and difficulty in obtaining the database. Using digital image processing and pattern recognition techniques, a supervised classification procedure of three different bamboo species has been developed.
In the proposed work, an automated bamboo species recognition system based on shape features of bamboo Culm sheath has been developed using Fourier and Legendre moment classifier. A confusion matrix is created to quantify the class wise and the classifier accuracy. The performance of the classifier is compared based on the classifier accuracy and classwise accuracy. It is concluded the Fourier moment have significantly good results than the Legendre moment. The system can eliminate the need for laborious human recognition method requiring a plant taxonomist. The results obtained shows considerable recognition accuracy proving that the techniques used is suitable to be implemented for commercial purposes.

목차

Abstract
 1. Introduction
  1.1 Identifying Bamboos
 2. Method and Methodology
 3. Classification Method
  3.1 Fourier Moment
  3.2 Legendre Moment
  3.3 Computing Invariant Legendre Moments
 4. Experimental Results
 5. Conclusion
 References

키워드

Culm Sheath Legendre Moment Fourier Moment Bamboo

저자

  • Krishna Singh [ Department of Electrical Engineering, IIT Roorkee, ROORKEE, India ] Corresponding Author
  • Indra Gupta [ Department of Electrical Engineering, IIT Roorkee, ROORKEE, India ]
  • Sangeeta Gupta [ Forest Research Institute, Dehradun, India ]

참고문헌

자료제공 : 네이버학술정보

간행물 정보

발행기관

  • 발행기관명
    보안공학연구지원센터(IJAST) [Science & Engineering Research Support Center, Republic of Korea(IJAST)]
  • 설립연도
    2006
  • 분야
    공학>컴퓨터학
  • 소개
    1. 보안공학에 대한 각종 조사 및 연구 2. 보안공학에 대한 응용기술 연구 및 발표 3. 보안공학에 관한 각종 학술 발표회 및 전시회 개최 4. 보안공학 기술의 상호 협조 및 정보교환 5. 보안공학에 관한 표준화 사업 및 규격의 제정 6. 보안공학에 관한 산학연 협동의 증진 7. 국제적 학술 교류 및 기술 협력 8. 보안공학에 관한 논문지 발간 9. 기타 본 회 목적 달성에 필요한 사업

간행물

  • 간행물명
    International Journal of Advanced Science and Technology
  • 간기
    월간
  • pISSN
    2005-4238
  • 수록기간
    2008~2016
  • 십진분류
    KDC 505 DDC 605

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