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Arzmi / P. P. Abdul Majeed / Muazu Musa

Deep Learning in Cancer Diagnostics

A Feature-based Transfer Learning Evaluation

Medium: Buch
ISBN: 978-981-19-8936-0
Verlag: Springer Nature Singapore
Erscheinungstermin: 19.01.2023
Lieferfrist: bis zu 10 Tage

Cancer is the leading cause of mortality in most, if not all, countries around the globe. It is worth noting that the World Health Organisation (WHO) in 2019 estimated that cancer is the primary or secondary leading cause of death in 112 of 183 countries for individuals less than 70 years old, which is alarming. In addition, cancer affects socioeconomic development as well. The diagnostics of cancer are often carried out by medical experts through medical imaging; nevertheless, it is not without misdiagnosis owing to a myriad of reasons. With the advancement of technology and computing power, the use of state-of-the-art computational methods for the accurate diagnosis of cancer is no longer far-fetched. In this brief, the diagnosis of  four types of common cancers, i.e., breast, lung, oral and skin, are evaluated with different state-of-the-art feature-based transfer learning models. It is expected that the findings in this book are insightful to various stakeholders in the diagnosis of cancer.


Produkteigenschaften


  • Artikelnummer: 9789811989360
  • Medium: Buch
  • ISBN: 978-981-19-8936-0
  • Verlag: Springer Nature Singapore
  • Erscheinungstermin: 19.01.2023
  • Sprache(n): Englisch
  • Auflage: 1. Auflage 2023
  • Serie: SpringerBriefs in Applied Sciences and Technology
  • Produktform: Kartoniert
  • Gewicht: 84 g
  • Seiten: 34
  • Format (B x H x T): 155 x 235 x 3 mm
  • Ausgabetyp: Kein, Unbekannt
Autoren/Hrsg.

Autoren

1. Epidemiology, detection and management of cancer.- 2. A VGG16 feature-based Transfer Learning Evaluation for the diagnosis of Oral Squamous Cell Carcinoma (OSCC).- 3. The Classification of Breast Cancer: The effect of hyperparameter optimisation towards the efficacy of feature-based transfer learning pipeline.- 4. The Classification of Lung Cancer: A DenseNet feature-based Transfer Learning Evaluation.- 5. Skin Cancer Diagnostics: A VGG Ensemble Approach.- 6. The Way Forward.