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    • UNIR REVISTAS
    • Revista IJIMAI
    • 2022
    • vol. 7, nº 5, september 2022
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    • UNIR REVISTAS
    • Revista IJIMAI
    • 2022
    • vol. 7, nº 5, september 2022
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    ED-Dehaze Net: Encoder and Decoder Dehaze Network

    Autor: 
    Zhang, Hongqi
    ;
    Wei, Yixiong
    ;
    Zhou, Hongqiao
    ;
    Wu, Qianhao
    Fecha: 
    09/2022
    Palabra clave: 
    image dehazing; encoder and decoder network; generative adversarial etwork; multi-scale convolution block; loss function; IJIMAI
    Revista / editorial: 
    International Journal of Interactive Multimedia and Artificial Intelligence (IJIMAI)
    Tipo de Ítem: 
    article
    URI: 
    https://reunir.unir.net/handle/123456789/13712
    DOI: 
    https://doi.org/10.9781/ijimai.2022.08.008
    Dirección web: 
    https://www.ijimai.org/journal/bibcite/reference/3160
    Open Access
    Resumen:
    The presence of haze will significantly reduce the quality of images, such as resulting in lower contrast and blurry details. This paper proposes a novel end-to-end dehazing method, called Encoder and Decoder Dehaze Network (ED-Dehaze Net), which contains a Generator and a Discriminator. In particular, the Generator uses an Encoder-Decoder structure to effectively extract the texture and semantic features of hazy images. Between the Encoder and Decoder we use Multi-Scale Convolution Block (MSCB) to enhance the process of feature extraction. The proposed ED-Dehaze Net is trained by combining Adversarial Loss, Perceptual Loss and Smooth L1 Loss. Quantitative and qualitative experimental results showed that our method can obtain the state-of-the-art dehazing performance.
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