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Convolutional Neural Networks for the Segmentation of Microcalcification in Mammography Imaging.

Gabriele ValvanoGianmarco SantiniNicola MartiniAndrea RipoliChiara IacconiDante ChiappinoDaniele Della Latta
Published in: Journal of healthcare engineering (2019)
Cluster of microcalcifications can be an early sign of breast cancer. In this paper, we propose a novel approach based on convolutional neural networks for the detection and segmentation of microcalcification clusters. In this work, we used 283 mammograms to train and validate our model, obtaining an accuracy of 99.99% on microcalcification detection and a false positive rate of 0.005%. Our results show how deep learning could be an effective tool to effectively support radiologists during mammograms examination.
Keyphrases
  • convolutional neural network
  • deep learning
  • artificial intelligence
  • loop mediated isothermal amplification
  • real time pcr
  • label free
  • machine learning
  • mass spectrometry
  • young adults
  • high speed