Masked Sequence Autoencoding for Enhanced Defect Visualization in Active Infrared Thermography

Fuente: arXiv
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Main Authors: Salah, Mohammed, Ouda, Eman, Sfarra, Stefano, Svetinovic, Davor, Abdulrahman, Yusra
Format: Preprint
Published: 2025
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author Salah, Mohammed
Ouda, Eman
Sfarra, Stefano
Svetinovic, Davor
Abdulrahman, Yusra
author_facet Salah, Mohammed
Ouda, Eman
Sfarra, Stefano
Svetinovic, Davor
Abdulrahman, Yusra
contents Active infrared thermography (AIRT) became a crucial tool in aerospace non-destructive testing (NDT), enabling the detection of hidden defects and anomalies in materials by capturing thermal responses over time. In AIRT, autoencoders are widely used to enhance defect detection by reducing the dimensionality of thermal data and improving the signal-to-noise ratio. However, traditional AIRT autoencoders often struggle to disentangle subtle defect features from dominant background responses, leading to suboptimal defect analysis under varying material and inspection conditions. To overcome this challenge, this work proposes a Masked CNN-Attention Autoencoder (AIRT-Masked-CAAE) that integrates convolutional feature extraction with attention mechanisms to capture both local thermal patterns and global contextual dependencies. The AIRT-Masked-CAAE introduces a masked sequence autoencoding strategy, where the network learns to infer missing thermal responses from surrounding contextual cues, while suppressing background redundancy. In addition, the proposed masked sequence autoencoding approach enables training on only a subset of the thermal sequence, while providing generalizable latent representations and reducing training time by a factor of 30. The AIRT-Masked-CAAE framework was evaluated using specimens made of PVC, CFRP, and PLA. The results demonstrate that the AIRT-Masked-CAAE surpasses state-of-the-art AIRT autoencoders in terms of contrast, signal-to-noise ratio (SNR), and metrics based on neural networks.
format Preprint
id arxiv_https___arxiv_org_abs_2512_23000
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Masked Sequence Autoencoding for Enhanced Defect Visualization in Active Infrared Thermography
Salah, Mohammed
Ouda, Eman
Sfarra, Stefano
Svetinovic, Davor
Abdulrahman, Yusra
Signal Processing
Active infrared thermography (AIRT) became a crucial tool in aerospace non-destructive testing (NDT), enabling the detection of hidden defects and anomalies in materials by capturing thermal responses over time. In AIRT, autoencoders are widely used to enhance defect detection by reducing the dimensionality of thermal data and improving the signal-to-noise ratio. However, traditional AIRT autoencoders often struggle to disentangle subtle defect features from dominant background responses, leading to suboptimal defect analysis under varying material and inspection conditions. To overcome this challenge, this work proposes a Masked CNN-Attention Autoencoder (AIRT-Masked-CAAE) that integrates convolutional feature extraction with attention mechanisms to capture both local thermal patterns and global contextual dependencies. The AIRT-Masked-CAAE introduces a masked sequence autoencoding strategy, where the network learns to infer missing thermal responses from surrounding contextual cues, while suppressing background redundancy. In addition, the proposed masked sequence autoencoding approach enables training on only a subset of the thermal sequence, while providing generalizable latent representations and reducing training time by a factor of 30. The AIRT-Masked-CAAE framework was evaluated using specimens made of PVC, CFRP, and PLA. The results demonstrate that the AIRT-Masked-CAAE surpasses state-of-the-art AIRT autoencoders in terms of contrast, signal-to-noise ratio (SNR), and metrics based on neural networks.
title Masked Sequence Autoencoding for Enhanced Defect Visualization in Active Infrared Thermography
topic Signal Processing
url https://arxiv.org/abs/2512.23000