The automated cell counting system represents a significant step forward in the application of artificial intelligence to pathology.
The automated cell counting system represents a significant step forward in the application of artificial intelligence to pathology. By leveraging advanced computer vision algorithms and a multi-stage AI methodology, this project addresses the inefficiencies of traditional manual methods in analyzing histological samples.
Pathology plays a crucial role in medical diagnostics, examining diseases at the cellular level. However, manual cell counting in histological slides remains labor-intensive and error-prone, requiring significant time and expertise. Recognizing these challenges, our team applied AI and machine learning techniques to streamline and automate this process. This project has both scientific significance—advancing computer vision applications—and practical value by improving the accuracy and speed of histological analysis.
Problem Analysis:
Proof of Concept (PoC):
Minimum Viable Product (MVP):
january 15, 2025
january 04, 2025
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