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Il y a 4 modules dans ce cours
This hands-on course focuses on implementing AI-powered automation solutions for clinical workflows. Learners gain practical experience with Azure AI services for clinical documentation, medical text processing, anomaly detection, and intelligent monitoring systems. You learn to integrate multiple AI services to create comprehensive workflow automation solutions that enhance clinical efficiency and care quality. This course is designed for healthcare professionals, IT professionals in healthcare organizations, and career changers seeking to leverage AI and cloud technologies in healthcare settings, with basic cloud computing knowledge, SQL familiarity, and understanding of healthcare workflows. Throughout the course, participants will master the deployment of speech transcription services that convert clinical conversations into accurate documentation, significantly reducing administrative burden. You'll design robust anomaly detection systems capable of generating timely clinical alerts based on patient monitoring data, enabling proactive intervention. The course also covers the critical skill of creating AI output monitoring frameworks to ensure the quality, reliability, and accuracy of automated systems in healthcare settings. Learners will gain hands-on experience evaluating and optimizing AI-powered workflows, applying best practices to balance automation efficiency with clinical accuracy. By the end of the course, you'll be equipped to architect end-to-end solutions that seamlessly combine multiple Azure AI services, transforming clinical operations while maintaining the highest standards of patient care.
This foundational module introduces learners to the core technologies and techniques for automating clinical documentation processes. Students gain hands-on experience with Azure Text Analytics for Health, Dragon Medical One, Azure Speech Services, and natural language processing technologies specifically designed for healthcare environments. The module focuses on transforming unstructured clinical narratives into structured, actionable data while maintaining accuracy and clinical context. Learners explore the integration of speech recognition, entity extraction, and medical terminology processing to create comprehensive documentation workflows that enhance efficiency and reduce administrative burden.
Inclus
6 vidéos6 lectures4 devoirs
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6 vidéos•Total 19 minutes
Unlocking the Value in Clinical Notes•2 minutes
Extracting Medical Entities from Clinical Notes•5 minutes
From Voice to Value•3 minutes
Implementing Medical Speech Workflows•4 minutes
Speaking the Language of Medicine•3 minutes
Advanced Clinical NLP with Azure•3 minutes
6 lectures•Total 270 minutes
Clinical Data Extraction with Azure AI Language for Health•15 minutes
Advanced Text Processing and Document Classification
Module 2•10 heures à terminer
Détails du module
This intermediate module advances learners' skills in sophisticated text processing techniques tailored for healthcare environments. Students explore generative AI applications for clinical summarization, automated medical document classification systems, and the integration of multiple AI services into cohesive workflows. The module emphasizes multi-document analysis, advanced prompt engineering, and the creation of intelligent systems that can process complex clinical narratives across various document types. Learners develop expertise in handling lengthy clinical texts, maintaining medical accuracy, and designing quality assurance processes for AI-generated outputs.
Inclus
6 vidéos6 lectures4 devoirs
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6 vidéos•Total 20 minutes
The Art of Intelligent Summarization•2 minutes
Creating Clinical Summaries with Azure OpenAI•4 minutes
Automating the Coding Maze•3 minutes
Building a Medical Coding Classifier•4 minutes
The Symphony of Integrated AI•3 minutes
Building End-to-End Clinical Workflows•5 minutes
6 lectures•Total 255 minutes
Clinical Summarization with Generative AI•15 minutes
Advanced Text Processing and Document Classification•30 minutes
Summarization Proficiency•90 minutes
Classification Excellence•90 minutes
Workflow Integration Mastery•90 minutes
Anomaly Detection and Clinical Alert Systems
Module 3•12 heures à terminer
Détails du module
This advanced module focuses on implementing intelligent monitoring systems that can detect patterns and anomalies in patient data to support clinical decision-making. Students learn to configure Power BI's built-in AI anomaly detection features (powered by Azure AI) for physiological parameters, design sophisticated alert generation workflows, and create real-time monitoring systems that integrate with existing clinical infrastructure. The module emphasizes the balance between sensitivity and specificity in clinical alerting, strategies for reducing alert fatigue, and the development of intelligent escalation protocols that ensure critical information reaches the right clinicians at the right time.
Inclus
6 vidéos6 lectures4 devoirs
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6 vidéos•Total 22 minutes
Catching What Others Miss•2 minutes
Implementing Patient Monitoring with Azure Anomaly Detector•5 minutes
Smart Alerts That Save Time and Lives•3 minutes
Creating Intelligent Alert Workflows•4 minutes
The Digital Guardian Angel•2 minutes
Building Real-Time Monitoring Dashboards•5 minutes
Anomaly Detection and Clinical Alert Systems•30 minutes
Anomaly Detection Proficiency•90 minutes
Alert System Excellence•90 minutes
Real-Time Monitoring Mastery•120 minutes
AI Output Monitoring and Quality Assurance
Module 4•12 heures à terminer
Détails du module
This capstone module addresses the critical aspects of maintaining safe, effective, and reliable AI systems in healthcare production environments. Students learn to implement comprehensive monitoring frameworks using Azure Responsible AI tools, design quality assurance processes that ensure consistent performance, and create feedback mechanisms for continuous system improvement. The module covers regulatory compliance, audit trail management, fairness monitoring, and the integration of AI systems with existing healthcare information systems. Learners develop expertise in establishing governance frameworks that balance innovation with patient safety and regulatory requirements.
Inclus
6 vidéos6 lectures5 devoirs
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