Towards an Automatic Parameter-Tuning Framework for Cost Optimization on Video Encoding Cloud

Xiaowei Li, Yi Cui, Yuan Xue
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引用次数: 16

Abstract

The emergence of cloud encoding services facilitates many content owners, such as the online video vendors, to transcode their digital videos without infrastructure setup. Such service provider charges the customers only based on their resource consumption. For both the service provider and customers, lowering the resource consumption while maintaining the quality is valuable and desirable. Thus, to choose a cost-effective encoding parameter, configuration is essential and challenging due to the tradeoff between bitrate, encoding speed, and resulting quality. In this paper, we explore the feasibility of an automatic parameter-tuning framework, based on which the above objective can be achieved. We introduce a simple service model, which combines the bitrate and encoding speed into a single value: encoding cost. Then, we conduct an empirical study to examine the relationship between the encoding cost and various parameter settings. Our experiment is based on the one-pass Constant Rate Factor method in x264, which can achieve relatively stable perceptive quality, and we vary each parameter we choose to observe how the encoding cost changes. The experiment results show that the tested parameters can be independently tuned to minimize the encoding cost, which makes the automatic parameter-tuning framework feasible and promising for optimizing the cost on video encoding cloud.
基于视频编码云的成本优化自动参数调优框架
云编码服务的出现促进了许多内容所有者(如在线视频供应商)在没有基础设施设置的情况下对其数字视频进行转码。此类服务提供商仅根据其资源消耗向客户收费。对于服务提供者和客户来说,在保持质量的同时降低资源消耗是有价值和可取的。因此,为了选择一个经济有效的编码参数,由于比特率、编码速度和结果质量之间的权衡,配置是必不可少的,也是具有挑战性的。在本文中,我们探索了一个自动参数整定框架的可行性,在此基础上可以实现上述目标。我们引入了一个简单的服务模型,它将比特率和编码速度合并为一个值:编码成本。然后,我们进行了实证研究,以检验编码成本与各种参数设置之间的关系。我们的实验是基于x264的一遍恒定速率因子方法,它可以获得相对稳定的感知质量,我们改变我们选择的每个参数来观察编码成本的变化。实验结果表明,所测试的参数可以独立调整,以使编码成本最小化,这使得自动参数调整框架在视频编码云上的成本优化方面具有可行性和前景。
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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