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LINK . SPRINGER . COM {}

  1. Analyzed Page
  2. Matching Content Categories
  3. CMS
  4. Monthly Traffic Estimate
  5. How Does Link.springer.com Make Money
  6. Keywords
  7. Topics
  8. Schema
  9. External Links
  10. Analytics And Tracking
  11. Libraries
  12. CDN Services

We are analyzing https://link.springer.com/article/10.1007/s10916-019-1400-8.

Title:
Detection of Skin Cancer Using SVM, Random Forest and kNN Classifiers | Journal of Medical Systems
Description:
Most common and deadly type of cancer is Skin cancer. The destructive kind of cancers in skin is Melanoma as well as it can be identified at the initial stage and can be cured completely. For the diagnosis of melanoma, the identification of the melanocytes in the area of epidermis is an essential stage. In this paper the watershed segmentation method is implemented for segmentation. The extracted segments are subjected to feature extraction. The features extracted are shape, ABCD rule and GLCM. The extracted features are then used for classification. The classifiers are kNN (k Nearest Neighbor), Random Forest and SVM (Support Vector Machine). Among different classifiers, the SVM classifier provided better results for the skin lesions classification.
Website Age:
28 years and 1 months (reg. 1997-05-29).

Matching Content Categories {📚}

  • Education
  • Science
  • Technology & Computing

Content Management System {📝}

What CMS is link.springer.com built with?

Custom-built

No common CMS systems were detected on Link.springer.com, and no known web development framework was identified.

Traffic Estimate {📈}

What is the average monthly size of link.springer.com audience?

🌠 Phenomenal Traffic: 5M - 10M visitors per month


Based on our best estimate, this website will receive around 7,642,828 visitors per month in the current month.

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How Does Link.springer.com Make Money? {💸}

We can't figure out the monetization strategy.

Some websites aren't about earning revenue; they're built to connect communities or raise awareness. There are numerous motivations behind creating websites. This might be one of them. Link.springer.com has a secret sauce for making money, but we can't detect it yet.

Keywords {🔍}

article, skin, melanoma, google, scholar, detection, cancer, journal, segmentation, images, svm, classification, international, conference, privacy, cookies, content, data, information, research, classifiers, image, ieee, computer, publish, search, systems, knn, nair, kumar, diagnosis, access, lesion, chapter, springer, analysis, processing, log, medical, random, forest, published, murugan, sanu, extracted, features, lesions, malignant, discover, methods,

Topics {✒️}

month download article/chapter fuzzy-based data transformation abcd rule privacy choices/manage cookies image thresholding based skin melanoma segmentation international research journal dermatological photographs skin cancer diagnosis image segmen- tation full article pdf support vector machine melanoma” international conference watershed segmentation method medical systems aims increase classification performance skin lesions classification scope submit manuscript josephin arockia dhivya malignant melanoma images contour structural irregularity multistage illumination modeling illumination-corrected lesion �implementing dewa framework free online sources pigmented skin lesions conditions privacy policy type-2 fuzzy logic additional information publisher svm classifier provided skin cancer accepting optional cookies european economic area related subjects natural computing approaches ethics declarations conflict journal finder publish computer vision techniques ieee international conference check access instant access automatic detection skin melanoma malignant melanoma sanal kumar springer-verlag personal data published maps skin lesions article journal

Schema {🗺️}

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         headline:Detection of Skin Cancer Using SVM, Random Forest and kNN Classifiers
         description:Most common and deadly type of cancer is Skin cancer. The destructive kind of cancers in skin is Melanoma as well as it can be identified at the initial stage and can be cured completely. For the diagnosis of melanoma, the identification of the melanocytes in the area of epidermis is an essential stage. In this paper the watershed segmentation method is implemented for segmentation. The extracted segments are subjected to feature extraction. The features extracted are shape, ABCD rule and GLCM. The extracted features are then used for classification. The classifiers are kNN (k Nearest Neighbor), Random Forest and SVM (Support Vector Machine). Among different classifiers, the SVM classifier provided better results for the skin lesions classification.
         datePublished:2019-07-04T00:00:00Z
         dateModified:2019-07-04T00:00:00Z
         pageStart:1
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         sameAs:https://doi.org/10.1007/s10916-019-1400-8
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            Segmentation
            Classification
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            Health Informatics
            Statistics for Life Sciences
            Medicine
            Health Sciences
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      headline:Detection of Skin Cancer Using SVM, Random Forest and kNN Classifiers
      description:Most common and deadly type of cancer is Skin cancer. The destructive kind of cancers in skin is Melanoma as well as it can be identified at the initial stage and can be cured completely. For the diagnosis of melanoma, the identification of the melanocytes in the area of epidermis is an essential stage. In this paper the watershed segmentation method is implemented for segmentation. The extracted segments are subjected to feature extraction. The features extracted are shape, ABCD rule and GLCM. The extracted features are then used for classification. The classifiers are kNN (k Nearest Neighbor), Random Forest and SVM (Support Vector Machine). Among different classifiers, the SVM classifier provided better results for the skin lesions classification.
      datePublished:2019-07-04T00:00:00Z
      dateModified:2019-07-04T00:00:00Z
      pageStart:1
      pageEnd:9
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         Melanoma
         Segmentation
         Classification
         ABCD rule
         Epidermis
         GLCM
         Health Informatics
         Statistics for Life Sciences
         Medicine
         Health Sciences
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               type:PostalAddress
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      name:S.Anu H. Nair
      affiliation:
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               name:Department of CSE, Annamalai University, Chidambaram, India
               type:PostalAddress
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External Links {🔗}(49)

Analytics and Tracking {📊}

  • Google Tag Manager

Libraries {📚}

  • Clipboard.js
  • Prism.js

CDN Services {📦}

  • Crossref

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