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Despite success with treatment when diagnosed early, breast cancer
is still one of the most fatal forms of cancer for women. Imaging
diagnosis is still one of the most efficient ways to detect early
breast changes with mammography among the most used techniques.
However, there are other techniques that have emerged as
alternatives or even complementary tests in the early detection of
breast lesions (e.g., breast thermography and electrical impedance
tomography). Artificial intelligence can be used to optimize image
diagnosis, increasing the reliability of the reports and supporting
professionals who do not have enough knowledge or experience to
make good diagnoses. Biomedical Computing for Breast Cancer
Detection and Diagnosis is a collection of research that presents a
review of the physiology and anatomy of the breast; the dynamics of
breast cancer; principles of pattern recognition, artificial neural
networks, and computer graphics; and the breast imaging techniques
and computational methods to support and optimize the diagnosis.
While highlighting topics including mammograms, thermographic
imaging, and intelligent systems, this book is ideally designed for
medical oncologists, surgeons, biomedical engineers, medical
imaging professionals, cancer researchers, academicians, and
students in medicine, biomedicine, biomedical engineering, and
computer science.
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