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No-Reference Depth Map Quality Evaluation Model Based on Depth Map Edge Confidence Measurement in Immersive Video Applications

机译:沉浸式视频应用中基于深度图边缘置信度测量的无参考深度图质量评估模型

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When it comes to evaluating perceptual quality of digital media for overall quality of experience assessment in immersive video applications, typically two main approaches stand out: Subjective and objective quality evaluation. On one hand, subjective quality evaluation offers the best representation of perceived video quality assessed by the real viewers. On the other hand, it consumes a significant amount of time and effort, due to the involvement of real users with lengthy and laborious assessment procedures. Thus, it is essential that an objective quality evaluation model is developed. The speed-up advantage offered by an objective quality evaluation model, which can predict the quality of rendered virtual views based on the depth maps used in the rendering process, allows for faster quality assessments for immersive video applications. This is particularly important given the lack of a suitable reference or ground truth for comparing the available depth maps, especially when live content services are offered in those applications. This paper presents a no-reference depth map quality evaluation model based on a proposed depth map edge confidence measurement technique to assist with accurately estimating the quality of rendered (virtual) views in immersive multi-view video content. The model is applied for depth image-based rendering in multi-view video format, providing comparable evaluation results to those existing in the literature, and often exceeding their performance.
机译:在评估沉浸式视频应用中整体体验质量评估的数字媒体的感知质量时,通常有两种主要方法:主观和客观质量评估。一方面,主观质量评估可以最好地表示真实观看者评估的视频质量。另一方面,由于真实用户参与了冗长而费力的评估程序,因此它消耗了大量的时间和精力。因此,开发客观的质量评估模型至关重要。客观质量评估模型提供的提速优势可以根据渲染过程中使用的深度图预测渲染的虚拟视图的质量,从而可以更快地评估沉浸式视频应用的质量。鉴于缺少用于比较可用深度图的合适参考或基本事实,这一点尤其重要,尤其是在那些应用程序中提供实时内容服务时。本文提出了一种基于提出的深度图边缘置信度测量技术的无参考深度图质量评估模型,以帮助准确估计沉浸式多视图视频内容中渲染(虚拟)视图的质量。该模型适用于多视图视频格式的基于深度图像的渲染,可提供与文献中已有的评估结果相媲美的评估结果,并且经常超出其性能。

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