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Artificial Intelligence and Machine Learning for Digital Pathology - State-of-the-Art and Future Challenges

2020, Pocket, Engelsk

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Data driven Artificial Intelligence (AI) and Machine Learning (ML) in digital pathology, radiology, and dermatology is very promising. In specific cases, for example, Deep Learning (DL), even exceeding human performance. However, in the context of medicine it is important for a human expert to verify the outcome. Consequently, there is a need for transparency and re-traceability of state-of-the-art solutions to make them usable for ethical responsible medical decision support.  Moreover, big data is required for training, covering a wide spectrum of a variety of human diseases in different organ systems. These data sets must meet top-quality and regulatory criteria and must be well annotated for ML at patient-, sample-, and image-level. Here biobanks play a central and future role in providing large collections of high-quality, well-annotated samples and data. The main challenges are finding biobanks containing ‘‘fit-for-purpose’’ samples, providing quality related meta-data, gaining access to standardized medical data and annotations, and mass scanning of whole slides including efficient data management solutions.

Produktegenskaper

  • Bidragsyter

    Andreas Holzinger (Redaktør) ; Randy Goebel (Redaktør) ; Michael Mengel (Redaktør) ; Heimo Muller (Redaktør)
  • Forlag/utgiver

    Springer Nature Switzerland AG
  • Format

    Pocket
  • Språk

    Engelsk
  • Utgivelsesår

    2020
  • Antall sider

    341
  • Serienavn

    Lecture Notes in Computer Science
  • Utgivelsesdato

    21.06.2020
  • Varenummer

    9783030504014

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