تبدیل موجک براساس تشخیص خودکار آسیب در تصاویر دهانه رحم با استفاده از کانکتور فعال
WAVELET TRANSFORM BASED AUTOMATIC LESION DETECTION IN CERVIX IMAGES USING ACTIVE CONTOUR
نویسندگان |
این بخش تنها برای اعضا قابل مشاهده است ورودعضویت |
اطلاعات مجله |
thescipub.com |
سال انتشار |
2013 |
فرمت فایل |
PDF |
کد مقاله |
26620 |
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چکیده (انگلیسی):
Colposcopy is a medical diagnostic procedure to examine an illuminated, magnified view of the cervix by a
colposcope. Most cases of cervical cancer can be prevented through screening programs aimed at detecting
precancerous lesions. Colposcopy cervical images are acquired in raw form which contains major cervix
lesions, regions outside the cervix and parts of the imaging devices such as speculum. In this study, a fully
automated lesion detection method based on active contour is proposed. To detect the lesion, the active
contour method requires an initial mask in the acetowhite region. In the proposed method, the initial contour
is automatically obtained based on Discrete Wavelet Transform (DWT). Before feature extraction, a
preprocessing method is applied to remove the irrelevant information and specular reflection from the
colposcopy cervical images based on Mathematical morphology, Gaussian Mixture Modeling. Then the
wavelet features are extracted and the features are used as an input to the K Nearest Neighbour (KNN) to
obtain the initial mask. Segmentation results are evaluated on 240 images of colposcopy.
کلمات کلیدی مقاله (فارسی):
کولپوسکوپي ، مدل مخلوط گاوسي ، خوشه بندي به روش K ، عمليات مرفولوژي ، تبديل موجک گسسته ، نزديکترين همسايه ، کانکتور فعال
کلمات کلیدی مقاله (انگلیسی):
Keywords: Colposcopy, Gaussian Mixture Model, K Means Clustering, Morphological Operations, Discrete Wavelet Transform, K Nearest Neighbor, Active Contour
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