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An adaptive exposure fusion method using fuzzy logic and multivariate normal conditional random fields

  • Yu Hsiu Lin
  • , Kai Lung Hua
  • , Hsin Han Lu
  • , Wei Lun Sun
  • , Yung Yao Chen

研究成果: 期刊貢獻文章同行評審

4 引文 斯高帕斯(Scopus)

摘要

High dynamic range (HDR) has wide applications involving intelligent vision sensing which includes enhanced electronic imaging, smart surveillance, self-driving cars, intelligent medical diagnosis, etc. Exposure fusion is an essential HDR technique which fuses different exposures of the same scene into an HDR-like image. However, determining the appropriate fusion weights is difficult because each differently exposed image only contains a subset of the scene’s details. When blending, the problem of local color inconsistency is more challenging; thus, it often requires manual tuning to avoid image artifacts. To address this problem, we present an adaptive coarse-to-fine searching approach to find the optimal fusion weights. In the coarse-tuning stage, fuzzy logic is used to efficiently decide the initial weights. In the fine-tuning stage, the multivariate normal conditional random field model is used to adjust the fuzzy-based initial weights which allows us to consider both intra-and inter-image information in the data. Moreover, a multiscale enhanced fusion scheme is proposed to blend input images when maintaining the details in each scale-level. The proposed fuzzy-based MNCRF (Multivariate Normal Conditional Random Fields) fusion method provided a smoother blending result and a more natural look. Meanwhile, the details in the highlighted and dark regions were preserved simultaneously. The experimental results demonstrated that our work outperformed the state-of-the-art methods not only in several objective quality measures but also in a user study analysis.

原文English
文章編號4743
期刊Sensors
19
發行號21
DOIs
出版狀態Published - 1 11月 2019

文獻附註

Publisher Copyright:
© 2019 by the authors. Licensee MDPI, Basel, Switzerland.

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