Abstract
BACKGROUND:
The early detection of human breast cancer represents a great chance of survival. Malignant tissues have more water content and higher electrolytes concentration while they have lower fat content than the normal. These cancer biochemical characters provide malignant tissue with high electric permittivity (
OBJECTIVE:
To examine if the dielectric behavior of normal and malignant tissues at low frequencies (
METHODS:
RESULTS:
Deep learning analysis has an accuracy of 91.7%, 85.7% sensitivity, and 100% specificity for instant and automatic prediction of the type of breast tissue, either normal or malignant.
CONCLUSIONS:
These data can be used in both cancer diagnosis and prognosis follow-up.
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