Integration and Implementation Strategies for AI Algorithm Deployment with Smart Routing Rules and Workflow Management
Barbaros Selnur Erdal, Vikash Gupta, Mutlu Demirer, Kim H. Fair,, Richard D. White, Jeff Blair, Barbara Deichert, Laurie Lafleur, Ming Melvin, Qin, David Bericat, Brad Genereaux

TL;DR
This paper discusses strategies for deploying AI in healthcare, emphasizing interoperability standards, smart routing, workflow management, and scalable deployment tools like Project MONAI to overcome adoption barriers.
Contribution
It introduces the role of interoperability standards, smart routing rules, and the MONAI Deploy SDK in enabling scalable, standardized AI deployment in healthcare workflows.
Findings
Smart Routing Rules improve workflow efficiency
MONAI Deploy SDK simplifies AI application deployment
Interoperability standards facilitate integration of AI in healthcare
Abstract
This paper reviews the challenges hindering the widespread adoption of artificial intelligence (AI) solutions in the healthcare industry, focusing on computer vision applications for medical imaging, and how interoperability and enterprise-grade scalability can be used to address these challenges. The complex nature of healthcare workflows, intricacies in managing large and secure medical imaging data, and the absence of standardized frameworks for AI development pose significant barriers and require a new paradigm to address them. The role of interoperability is examined in this paper as a crucial factor in connecting disparate applications within healthcare workflows. Standards such as DICOM, Health Level 7 (HL7), and Integrating the Healthcare Enterprise (IHE) are highlighted as foundational for common imaging workflows. A specific focus is placed on the role of DICOM gateways,…
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Taxonomy
TopicsArtificial Intelligence in Healthcare and Education · Advanced X-ray and CT Imaging · Radiomics and Machine Learning in Medical Imaging
MethodsFocus
