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Determination of ulcer in the digestive tract using image analysis in wireless capsule?endoscopy

DOI:10.3233/bsi-150124 期刊:Biomedical Spectroscopy and Imaging 出版年份:2015 更新时间:2025-09-04 15:30:14
摘要: This paper presents an image processing algorithm for the diagnosis of ulcers, which is a lesion occurring in the digestive tract, based on endoscopic images. In general, ulcers are visually distinguishable from normal tissues owing to the defective state in the mucosal membrane, cornea or skin tissue. Based on this characteristic, we used different colors to distinguish between ulcer and normal tissues in the proposed method. First, image luminance was adjusted to ensure similar luminance distribution values through a preprocessing stage in which the captured images were normalized to achieve uniform intensity distribution for each channel. Then, we selected distinctive elements for the detection of ulcer tissues with distinct image-associated chromatic characteristics. Because image luminance can affect detection even after preprocessing, we selected elements that were distinguishable from normal tissues based on the distribution of values displayed by ulcers from both RGB and HSV bands. Moreover, most of the digestive tract ulcers occur on the mucosal surface and tend to cluster together to form a specific zone. This implies that a detected ulcer pixel is more likely to be surrounded by ulcer tissue than normal tissue. Therefore, we used the intensity of each image channel as an additional detection element and performed ulcerative zone detection. An additional advantage of the zone detection process is the exclusion of errors caused by image-emanated random impulse noise. For performance evaluation of the image processing algorithm, we used fifty sheets of endoscopic images and conducted ulcer detection experiments. Finally, we validated our algorithm as showing 91.05% sensitivity and 98.64% specificity.
作者: Jin Hee Park,Gilwon Yoon
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This study focuses on developing an image processing algorithm for the real-time detection of ulcers in the digestive tract using wireless capsule endoscopy images. The algorithm aims to distinguish ulcer tissues from normal tissues based on chromatic characteristics in RGB and HSV bands, and to enhance detection accuracy through morphological analysis.

The proposed image processing algorithm demonstrated high ulcer recognition accuracy with a sensitivity of 91.05% and specificity of 98.64%. The integration of mathematical and morphological analyses effectively enhanced detection accuracy, outperforming previous studies. The algorithm's simplicity allows for real-time processing in capsule endoscopy, making it a practical tool for clinical diagnosis.

The algorithm's performance may be affected by the quality of endoscopic images, such as those with low luminance or resolution. Additionally, the presence of digestive fluids or bubbles can complicate ulcer detection. The study acknowledges the challenge of distinguishing yellowish digestive fluid from ulcerous regions and the impact of random impulse noise on image processing.

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