EventsThe 27th International Electronic Conference on Synthetic Organic Chemistry
Published
This submission belongs to the session S2. Bioorganic, Medicinal and Natural Products Chemistry of the event The 27th International Electronic Conference on Synthetic Organic Chemistry
Published date
15 Nov, 2023
Academic Editor
author-avatarJulio A. Seijas
Citation
Mohsina Bilal, Richa Gupta, Breast Cancer Screening Using Artificial Intelligence Techniques: Enhancing Biochemical Insights and Diagnostic Accuracy, in Proceedings of The 27th International Electronic Conference on Synthetic Organic Chemistry, 15 November–30 November 2023, MDPI: Basel, Switzerland, doi: 10.3390/ecsoc-27-16121
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Breast Cancer Screening Using Artificial Intelligence Techniques: Enhancing Biochemical Insights and Diagnostic Accuracy

1. Jamia Hamdard, India
2. SEST, Department of Computer Science Engineering, Jamia Hamdard, India
Abstract

Breast cancer, the most prevalent cancer in women worldwide, demands effective screening for early identification and improved treatment outcomes. Recent advances in artificial intelligence (AI) have resulted in dramatic developments in a variety of fields, including healthcare. In this review paper, we look at how AI approaches can be used in breast cancer screening to improve diagnostic accuracy and provide deeper molecular insights. We dig into the complex terrain of breast cancer treatment, which has transformed as a result of the discovery of prognostic and predictive biomarkers, allowing for personalized therapeutic methods based on molecular subgroups. We emphasize the importance of AI-driven approaches in optimizing screening procedures and providing quick and exact findings.

The potential of AI to revolutionize breast cancer screening is highlighted, including its applications in diagnostic imaging, lesion identification, and standardized imaging data interpretation. The analysis highlights AI's critical role in tackling issues associated with the integration of new technologies, providing solutions for worldwide standardization in cancer detection.

Keywords
Breast cancer screening
artificial intelligence
diagnostic accuracy
molecular subgroups
prognostic biomarkers
predictive biomarkers
personalised therapy
AI-driven methodologies
diagnostic imaging
lesion detection
standardised evaluation
microfl
Manuscript
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