Аннотация
Malignant melanoma is considered as one of the most deadly cancers, which has broad-ly increased worldwide since the last decade. In 2018, around 91,270 cases of melanoma were re-ported and 9,320 people died in the US. However, diagnosis at the initial stage indicates a high survival rate. The conventional diagnostic methods are expensive, inconvenient and subject to the dermatologist’s expertise as well as a highly equipped environment. Recent achievements in computerized based systems are highly promising with improved accuracy and efficiency. Several measures such as irregularity, contrast stretching, change in origin, feature extraction and feature selection are considered for accurate melanoma detection and classification. Typically, digital der-moscopy comprises four fundamental image processing steps including preprocessing, segmenta-tion, feature extraction and reduction, and lesion classification. Our survey is compared with the existing surveys in terms of preprocessing techniques (hair removal, contrast stretching) and their challenges, lesion segmentation methods, feature extraction methods with their challenges, features selection techniques, datasets for the validation of the digital system, classification methods and performance measure. Also, a brief summary of each step is presented in the tables. The challenges for each step are also described in detail, which clearly indicate why the digital systems are not performing well. Future directions are also given in this survey.
| Язык оригинала | English |
|---|---|
| Страницы (с-по) | 794-822 |
| Число страниц | 29 |
| Журнал | Current Medical Imaging |
| Том | 16 |
| Номер выпуска | 7 |
| DOI | |
| Состояние | Published - 2020 |
| Опубликовано для внешнего пользования | Да |
ЦУР ООН
Работа этого автора способствует достижению следующих Целей устойчивого развития
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Good health and well being
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Industry innovation and infrastructure
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Sustainable cities and communities
ASJC Scopus subject areas
- Internal Medicine
- Radiology Nuclear Medicine and imaging
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