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README.md
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- medical
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pretty_name: CNTXTAI Medical Doctor's Notes
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---
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- medical
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pretty_name: CNTXTAI Medical Doctor's Notes
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---
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Emergency Department Case Notes Dataset
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Dataset Summary
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This dataset contains 43 emergency department medical case notes, sourced from MTSamples, a widely recognized repository of medical transcription samples. Each entry includes a case title, category, and source link to a PDF document with detailed notes.
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This dataset is highly valuable for medical research, categorization, and analysis. The structured format allows for efficient information retrieval and classification, making it a well-maintained reference for academic and clinical research. A rigorous validation process ensures credibility, making this dataset reliable for further study and application.
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Dataset Structure
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The dataset consists of the following key columns:
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• Title: The medical case or note title.
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• Category: The classification under which the case falls (Emergency Department Notes).
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• Source Link: Direct links to case notes in PDF format from MTSamples.
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Dataset Statistics
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• Total Entries: 43
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• Categories: Emergency Department Notes
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• Source: MTSamples (PDF-based medical transcription samples)
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• No Missing Data: All fields are complete
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Common Medical Cases
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The dataset captures real-world emergency department cases, focusing on:
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• ER Visits: Cases related to dizziness, falls, and drug ingestion.
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• Respiratory Issues: Difficulty breathing and related conditions.
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• Pain Management: Conditions such as dental pain.
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• Substance-Related Cases: Drug ingestion, including ecstasy consumption.
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• General Emergency Cases: Conditions requiring urgent medical intervention.
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Data Collection & Validation
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• Source: Extracted from MTSamples, ensuring high-quality transcription data.
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• Categorization: All cases fall under Emergency Department Notes for consistency.
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• Validation: Checked for completeness, metadata accuracy, and accessibility of links.
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Usage
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This dataset is ideal for:
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• Medical Research: Studying common emergency cases.
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• Healthcare Training: Enhancing clinical decision-making.
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• Machine Learning Applications: Categorizing medical case notes for NLP models.
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• Academic Research: Supporting studies in emergency medicine.
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License & Citation
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Ensure proper attribution to MTSamples when using this dataset.
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