Web-based AI Platform for Early Cancer Detection through Histopathological Image Analysis

Vaibhav Vudayagiri - · International Journal For Multidisciplinary Research · 2024

This article presents an innovative web-based artificial intelligence platform designed to revolutionize early cancer detection through advanced histopathological image analysis.The solution addresses critical challenges in traditional cancer diagnostics, where manual analysis faces limitations of inter-observer variability and time constraints. The platform leverages state-of-the-art convolutional neural networks, specifically a modified ResNet-152 architecture enhanced with attention mechanisms, to provide accurate and efficient cancer detection capabilities. The article demonstrates exceptional clinical performance, achieving 94.8% sensitivity (95% CI: 93.2-96.4%) and 92.3% specificity (95% CI: 90.7-93.9%) in comprehensive validation studies across five independent medical centers. This represents a 35% improvement in diagnostic accuracy compared to traditional methods. The platform processes high-resolution histopathological images (up to 100,000 x 100,000 pixels) with an average processing time of 45 seconds per case, enabling real-time analysis and rapid diagnosis

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