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Information Journal Paper

Title

CLASSIFICATION OF BENIGN AND MALIGNANT TUMORS IN BREAST ULTRASOUND IMAGES BY USING MORPHOLOGICAL FEATURES

Pages

  75-89

Abstract

 Breast cancer is the second leading cause of death for women all over the world and since the cause of the disease remains unknown, the only method for controlling it is its early detection and diagnosis.The most prominent method for the treatment of breast cancer is biopsy and pathological tests. As the mentioned treatments are invasive and are, in many cases, unnecessary, researchers are in search for high-reliability COMPUTER-AIDED DIAGNOSTIC SYSTEMs in order to decrease the number of unnecessary biopsies. These systems consist of four major parts: preprocessing, segmentation, feature extraction and selection, and CLASSIFICATION which are beneficial tools for diagnosis of breast cancer. In the present study in order to classify the breast tumors into benign and malignant, borders of the tumors are identified after image preprocessing using with a combination of manual and computerize approaches. In the next stage, 827 features, consisting of 24 shape-based morphological features and 803 border-based morphological features, have been extracted from each image, which 604 of them are recent features added in the present study.Subsequently, a sparse LOGISTIC REGRESSION classifier was used to eliminate the irrelevant features and classify the images. The data base used in the current study includes 104 Sonography images from breast tumors (72 from benign and 32 from malignant tumors). By applying the suggested algorithm in the present study to images, type of tumors was identified with 89.42% accuracy, 78.13% sensitivity, and 94.44% precision.

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  • Cite

    APA: Copy

    NEMAT, HODA, Mahloojifar, ali, GOOYA, ALI, & AHMADINEJAD, NASRIN. (2018). CLASSIFICATION OF BENIGN AND MALIGNANT TUMORS IN BREAST ULTRASOUND IMAGES BY USING MORPHOLOGICAL FEATURES. MACHINE VISION AND IMAGE PROCESSING, 4(2 ), 75-89. SID. https://sid.ir/paper/265700/en

    Vancouver: Copy

    NEMAT HODA, Mahloojifar ali, GOOYA ALI, AHMADINEJAD NASRIN. CLASSIFICATION OF BENIGN AND MALIGNANT TUMORS IN BREAST ULTRASOUND IMAGES BY USING MORPHOLOGICAL FEATURES. MACHINE VISION AND IMAGE PROCESSING[Internet]. 2018;4(2 ):75-89. Available from: https://sid.ir/paper/265700/en

    IEEE: Copy

    HODA NEMAT, ali Mahloojifar, ALI GOOYA, and NASRIN AHMADINEJAD, “CLASSIFICATION OF BENIGN AND MALIGNANT TUMORS IN BREAST ULTRASOUND IMAGES BY USING MORPHOLOGICAL FEATURES,” MACHINE VISION AND IMAGE PROCESSING, vol. 4, no. 2 , pp. 75–89, 2018, [Online]. Available: https://sid.ir/paper/265700/en

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