Abstract
Translating readily available visible (VIS) images into thermal infrared (TIR) images effectively alleviates the shortage of TIR data. While current methods have yielded commendable results, they fall short in generating diverse and realistic thermal infrared images, primarily due to insufficient consideration of temperature variations. In this paper, we propose a Thermally Controlled GAN (TC-GAN) that leverages VIS images to generate diverse TIR images, with the ability to control the relative temperatures of multiple objects, particularly those with temperature variations. Firstly, we introduce the physical coding module, which employs a conditional variational autoencoder GAN to learn the distributions of relative temperature information for the objects and environmental state information. Then, the physical information can be obtained by sampling the distribution. When this information is fused with the visible image, it facilitates the generation of diverse TIR images. To ensure authenticity and strengthen the physical constraints across different regions of the image, we introduce a self-attention mechanism in the generator that prioritizes the relative temperature relationships within the image. Additionally, we utilize a local discriminator that focuses on objects with actively changing temperatures and their interactions with the surrounding environment, thereby reducing the discontinuity between the target and the background. Experiments on the Drone Vehicle and AVIID datasets show that our approach outperforms mainstream diversity generation methods in terms of authenticity and diversity.
| Original language | English |
|---|---|
| Pages (from-to) | 5685-5695 |
| Number of pages | 11 |
| Journal | IEEE Transactions on Multimedia |
| Volume | 27 |
| DOIs | |
| State | Published - 2025 |
Keywords
- Diversity generation
- generative adversarial networks
- self-attention
- temperature coding
- visible to thermal translation
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