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Makale detayı · 2017 · article

An Efficient Image Segmentation Algorithm Using Neutrosophic Graph Cut

Dergi Symmetry
ISSN2073-8994
YÖKSİS OpenAlex Açık erişim · gold
Yıl2017
Atıf19OpenAlex
Atıf18Semantic Scholar · 1 etkili
Yüzdelik%87,3
FWCI2,181,00 = dünya ortalaması
Scopus (SJR)Q2
WoS (JCR)Q2

Veri kaynağı ayrımı

  • YÖKSİSYÖKSİS makale kaydı
  • YÖKSİS dergi adıSymmetry
  • Katalog eşleşmesi (ISSN)Symmetry
  • OpenAlexOpenAlex zenginleştirmesi (özet, atıf, konular)
  • Semantic Scholaratıf sayısı (OpenAlex ile birleştirilmez)

Özet

OpenAlex İngilizce

Segmentation is considered as an important step in image processing and computer vision applications, which divides an input image into various non-overlapping homogenous regions and helps to interpret the image more conveniently. This paper presents an efficient image segmentation algorithm using neutrosophic graph cut (NGC). An image is presented in neutrosophic set, and an indeterminacy filter is constructed using the indeterminacy value of the input image, which is defined by combining the spatial information and intensity information. The indeterminacy filter reduces the indeterminacy of the spatial and intensity information. A graph is defined on the image and the weight for each pixel is represented using the value after indeterminacy filtering. The segmentation results are obtained using a maximum-flow algorithm on the graph. Numerous experiments have been taken to test its performance, and it is compared with a neutrosophic similarity clustering (NSC) segmentation algorithm and a graph-cut-based algorithm. The results indicate that the proposed NGC approach obtains better performances, both quantitatively and qualitatively.

Konular

Atıflar

OpenAlex cited_by_count. WoS veya Scopus atıf sayısı değildir; o kaynaklar için ayrı kolon yoktur.

19atıfOpenAlex · cited_by_count (önbellek / veritabanı)

Yerel katalogda bu makaleye atıf yapan 2 yayın (OpenAlex referans eşleşmesi; tam dünya listesi değildir).

  1. 2019 OCE-NGC: A neutrosophic graph cut algorithm using optimized clustering estimation algorithm for dermoscopic skin lesion segmentationAtıf 29 · OpenAlex
  2. 2018 A State-of-the-Art Review of Neutrosophic Sets and TheoryAtıf 7 · OpenAlex

Yazarlar

4
  1. YAMAN AKBULUT FIRAT ÜNİVERSİTESİ 1
  2. ABDULKADİR ŞENGÜR FIRAT ÜNİVERSİTESİ 2
  3. YANHUI GUO 3
  4. FLORENTIN SMARANDACHE 4