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Research PaperResearchia:202608.12053

Entropy-Centric Explainable AI for Remote Sensing Image Segmentation

Ali Saleh

Abstract

Artificial intelligence (AI) has become a powerful approach to solving complex problems in critical domains. Many concerns arise regarding the decision-making process of its models, mainly due to deep neural networks outperforming their peers at the cost of ambiguity in feature extraction and prediction. Consequently, in critical domains such as remote sensing, where high-resolution imagery must be analyzed using black-box models, the lack of transparency limits trust in these models and, thus, ...

Submitted: August 12, 2026Subjects: AI; Artificial Intelligence

Description / Details

Artificial intelligence (AI) has become a powerful approach to solving complex problems in critical domains. Many concerns arise regarding the decision-making process of its models, mainly due to deep neural networks outperforming their peers at the cost of ambiguity in feature extraction and prediction. Consequently, in critical domains such as remote sensing, where high-resolution imagery must be analyzed using black-box models, the lack of transparency limits trust in these models and, thus, their adoption. In light of this reality, explaining and understanding the complex decision-making process of AI models has become essential. Explainable AI (XAI) aims to bridge this gap by providing insights into how and why certain decisions are made. While significant progress has been achieved in explaining image classification tasks, image segmentation still offers considerable room for improvement. In this context, this paper proposes an entropy-centric XAI method for semantic segmentation. Moreover, a new XAI evaluation methodology is proposed to efficiently measure the relevance of the regions highlighted by the proposed XAI method. Experimental results demonstrate the superiority of the proposed XAI method compared with recently adapted XAI methods for semantic segmentation.


Source: arXiv:2608.11064v1 - http://arxiv.org/abs/2608.11064v1 PDF: https://arxiv.org/pdf/2608.11064v1 Original Link: http://arxiv.org/abs/2608.11064v1

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Submission Info
Date:
Aug 12, 2026
Topic:
Artificial Intelligence
Area:
AI
Comments:
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