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Blind Quality Metric of DIBR-Synthesized Images in the Discrete Wavelet Transform Domain

机译:在离散小波变换域中的DIBR合成图像的盲质量度量

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Free viewpoint video (FVV) has received considerable attention owing to its widespread applications in several areas such as immersive entertainment, remote surveillance and distanced education. Since FVV images are synthesized via a depth image-based rendering (DIBR) procedure in the blind environment (without reference images), a real-time and reliable blind quality assessment metric is urgently required. However, the existing image quality assessment metrics are insensitive to the geometric distortions engendered by DIBR. In this research, a novel blind method of DIBR-synthesized images is proposed based on measuring geometric distortion, global sharpness and image complexity. First, a DIBR-synthesized image is decomposed into wavelet subbands by using discrete wavelet transform. Then, the Canny operator is employed to detect the edges of the binarized low-frequency subband and high-frequency subbands. The edge similarities between the binarized low-frequency subband and high-frequency subbands are further computed to quantify geometric distortions in DIBR-synthesized images. Second, the log-energies of wavelet subbands are calculated to evaluate global sharpness in DIBR-synthesized images. Third, a hybrid filter combining the autoregressive and bilateral filters is adopted to compute image complexity. Finally, the overall quality score is derived to normalize geometric distortion and global sharpness by the image complexity. Experiments show that our proposed quality method is superior to the competing reference-free state-of-the-art DIBR-synthesized image quality models.
机译:由于其在沉浸式娱乐,远程监测和远程教育等若干领域,自由观点视频(FVV)受到广泛的关注。由于在盲环境中通过深度图像的渲染(DIBR)过程合成FVV图像(不参考图像),因此迫切需要实时和可靠的盲质评估度量。然而,现有的图像质量评估度量对由DIBR发出的几何失真不敏感。在该研究中,基于测量几何变形,全局清晰度和图像复杂性,提出了一种新的DIBR合成图像的盲方法。首先,通过使用离散小波变换将DIBR合成的图像分解为小波子带。然后,用于检测二值化低频子带和高频子带的边缘的Canny运算符。二值化低频子带和高频子带之间的边缘相似度被进一步计算为量化DIBR合成图像中的几何失真。其次,计算小波子带的日志能量以评估DIBR合成图像中的全局清晰度。第三,采用混合滤波器组合自回归和双边滤波器来计算图像复杂性。最后,通过图像复杂度导出总体质量分数以使几何失真和全局清晰度正常化。实验表明,我们所提出的质量方法优于竞争的可参考最先进的DIBR合成的图像质量模型。

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