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What is Interpretability

Federated Learning and Privacy-Preserving in Healthcare AI
It is the capacity to explain and comprehend a model's choices, forecasts, or actions. Humans can learn from and use an interpretable model since it sheds light on the model's inner workings. For healthcare organizations and individuals to feel confident in the decisions being made on their behalf, interpretable models are essential.
Published in Chapter:
Secure and Privacy-Preserving Federated Learning With Explainable Artificial Intelligence for Smart Healthcare Systems
Rita Komalasari (Yarsi University, Indonesia)
Copyright: © 2024 |Pages: 26
DOI: 10.4018/979-8-3693-1874-4.ch018
Abstract
With the escalating global population, the healthcare sector faces unprecedented challenges, necessitating innovative solutions. Deep learning (DL) and federated learning (FL) have emerged as pivotal technologies, yet challenges persist in data privacy, security, and model interpretability, especially in healthcare applications. This research addresses these challenges by proposing robust frameworks for secure, privacy-preserving federated learning with explainable artificial intelligence in smart healthcare systems. The objective is to enhance the security, performance, and privacy of healthcare systems, ensuring their resilience and effectiveness in real-world scenarios. The research employs a literature approach. This comprehensive approach establishes a foundation for the future development of smart healthcare systems, fostering trust, transparency, and efficiency in healthcare decision-making processes.
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More Results
Explainable Artificial Intelligence
Characteristic of a good explanation to provide a fact as comprehensible as possible for humans (Doshi-Velez et al., 2017 AU59: The in-text citation "Doshi-Velez et al., 2017" is not in the reference list. Please correct the citation, add the reference to the list, or delete the citation. ).
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Open Challenges and Research Issues of XAI in Modern Smart Cities
The ability to understand and explain how an AI system works, including its input-output relationship and decision-making process.
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