Explainable AI in Healthcare Application

Author:

Sindiramutty Siva Raja1,Tee Wee Jing1,Balakrishnan Sumathi1,Kaur Sukhminder1ORCID,Thangaveloo Rajan2ORCID,Jazri Husin1ORCID,Khan Navid Ali1,Gharib Abdalla3,Manchuri Amaranadha Reddy4ORCID

Affiliation:

1. Taylor's University, Malaysia

2. Universiti Malaysia Sarawak, Malaysia

3. Zanzibar University, Tanzania

4. Kyungpook National University, South Korea

Abstract

Given the inherent risks in medical decision-making, medical professionals carefully evaluate a patient's symptoms before arriving at a plausible diagnosis. For AI to be widely accepted and useful technology, it must replicate human judgment and interpretation abilities. XAI attempts to describe the data underlying the black-box approach of deep learning (DL), machine learning (ML), and natural language processing (NLP) that explain how judgments are made. This chapter provides a survey of the most recent XAI methods employed in medical imaging and related fields, categorizes and lists the types of XAI, and highlights the methods used to make medical imaging topics more interpretable. Additionally, it focuses on the challenging XAI issues in medical applications and guides the development of better deep-learning system explanations by applying XAI principles in the analysis of medical pictures and text.

Publisher

IGI Global

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