Abstract

Abstract: This project endeavors to develop an intelligent document processing pipeline tailored specifically for medical reports, with a primary focus on samples from Dr Lal Path lab and targeting prevalent diseases leading to kidney failures such as glomerulonephritis, chronic kidney disease, polycystic kidney disease, hypertensive nephropathy, and lupus nephritis. The proposed pipeline integrates cutting-edge technologies including the YOLOv8 object detection model for precise cropping of tabular data, Paddle OCR for accurate extraction of information from tabular images, and Fuzzy Wuzzy NLP library for filtering pertinent data from the extracted information necessary for the subsequent machine learning model. The goal is to employ a neural network model to predict potential kidney failure based on the processed medical data. This holistic approach amalgamates advanced computer vision, natural language processing, and machine learning techniques to streamline the analysis of medical reports, potentially enhancing diagnostic accuracy and clinical decision-making in nephrology.

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