Performance Evaluation of AVC and HEVC for E-Learning: Optimizing Quality and Reducing Bandwidth Usage

Oğuz Kirat, T. Yerlikaya, Emir Öztürk
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Abstract

E-learning has experienced a surge in popularity, particularly during and after the COVID-19 pandemic. Online learning has proven to be a vital tool for students and educators to continue academic activities while adhering to social distancing guidelines and during the times of natural disasters that disrupt the conventional learning environments. It also offers accessibility to disabled students and those facing challenges to reach to the traditional learning. But due to increased demand, it is crucial to optimize cost of transmission while minimizing bandwidth usage while maintaining high-quality video transmission. To optimize cost and reduce network load, it is essential to minimize bandwidth usage while maintaining high-quality video. In response to this need, we present a novel dataset consisting of four e-learning scenarios. We encoded this dataset using various resolutions, bit rates, and encoder presets, and evaluated it in terms of encoding time, and quality using full-reference objective quality metrics such as MSE, PSNR, and SSIM. After experimenting with more than 1400 videos and configurations of encoders and codecs, we found out that it is possible to transmit videos in exceptional quality at bitrates as low as 5 Mbps for e-learning scenarios. We also present detailed results about correlation between file size, quality and encoding time to make optimizations for specific bandwidth, target quality or encoding speed.
用于电子学习的 AVC 和 HEVC 性能评估:优化质量和减少带宽使用
特别是在 COVID-19 大流行期间和之后,电子学习的受欢迎程度急剧上升。事实证明,在线学习是学生和教育工作者继续开展学术活动的重要工具,同时还能遵守社会疏远准则,以及在自然灾害期间破坏传统学习环境。它还为残疾学生和面临传统学习挑战的学生提供了无障碍环境。但是,由于需求的增加,在保持高质量视频传输的同时,优化传输成本、尽量减少带宽使用至关重要。为了优化成本和减少网络负荷,必须在保持高质量视频的同时尽量减少带宽使用。针对这一需求,我们提出了一个由四个电子学习场景组成的新型数据集。我们使用不同的分辨率、比特率和编码器预设对该数据集进行编码,并使用 MSE、PSNR 和 SSIM 等全参考客观质量指标对编码时间和质量进行评估。在对 1400 多个视频以及编码器和编解码器的配置进行实验后,我们发现,在电子学习场景中,可以用低至 5 Mbps 的比特率传输高质量的视频。我们还提供了文件大小、质量和编码时间之间相关性的详细结果,以便针对特定带宽、目标质量或编码速度进行优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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