Pregled bibliografske jedinice broj: 1017553
Brain Image Segmentation Based on Firefly Algorithm Combined with K-means Clustering
Brain Image Segmentation Based on Firefly Algorithm Combined with K-means Clustering // Studies in Informatics and Control, 28 (2019), 2; 167-176 doi:10.24846/v28i2y201905 (međunarodna recenzija, članak, znanstveni)
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Naslov
Brain Image Segmentation Based on Firefly
Algorithm Combined with K-means Clustering
Autori
Capor Hrošik, Romana ; Tuba, Eva ; Dolicanin, Edin ; Jovanovic, Raka ; Tuba, Milan
Izvornik
Studies in Informatics and Control (1220-1766) 28
(2019), 2;
167-176
Vrsta, podvrsta i kategorija rada
Radovi u časopisima, članak, znanstveni
Ključne riječi
medical digital images ; brain tumor detection ; image segmentation ; Clustering ; K-means
Sažetak
During the past few decades digital images have become an important part of numerous scientific fields. Digital images used in medicine enabled tremendous progress in the diagnostics, treatment determination process as well as in monitoring patient recovery. Detection of brain tumors represents one of the active research fields and an algorithm for brain image segmentation was developed with an aim to emphasize four different primary brain tumors: glioma, metastatic adenocarcinoma, metastatic bronchogenic carcinoma and sarcoma from PET, MRI and SPECT images. The proposed image segmentation method is based on the firefly algorithm whose solutions are improved by the k-means clustering algorithm when Otsu’s criterion was used as the fitness function. The proposed combined algorithm was tested on commonly used images from Harvard Whole Brain Atlas and the results were compared to other method from literature. The method proposed in this paper achieved better segmentation considering standard segmentation quality metrics such as normalized root square mean error, peak signal to noise and structural similarity index metric.
Izvorni jezik
Engleski
Znanstvena područja
Matematika, Računarstvo
Citiraj ovu publikaciju:
Časopis indeksira:
- Web of Science Core Collection (WoSCC)
- Science Citation Index Expanded (SCI-EXP)
- SCI-EXP, SSCI i/ili A&HCI
- Scopus