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Quality-aware predictor-based adaptation of still images for the multimedia messaging service

机译:用于多媒体消息服务的基于质量的基于预测器的静止图像适配

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摘要

The Multimedia Messaging Service (MMS) allows users with heterogeneous terminals to exchange structured messages composed of text, images, sound, and video. The MMS market is growing rapidly, posing the problem of MMS adaptation, which is necessary to ensure terminal interoperability. Message adaptation involves technological challenges, especially considering the high volume of messages that this service can handle. In this work, we propose novel predictor-based dynamic programming approaches to MMS adaptation, which provide a framework for explicit maximization of the user experience, rather than relying on heuristics to deliver adapted messages satisfactorily. We show that the proposed solutions lead to noticeably superior image quality and faster transcoding times than comparable algorithms offered in products currently on the market and those described in the literature.
机译:多媒体消息服务(MMS)允许具有异构终端的用户交换由文本,图像,声音和视频组成的结构化消息。 MMS市场正在快速增长,带来了MMS适应问题,这对于确保终端的互操作性是必不可少的。消息自适应涉及技术挑战,尤其是考虑到该服务可以处理的大量消息。在这项工作中,我们提出了新颖的基于预测器的MMS自适应动态编程方法,该方法为用户体验的显式最大化提供了一个框架,而不是依靠启发式方法来令人满意地传递自适应消息。我们表明,与当前市场上的产品和文献中描述的算法相比,所提出的解决方案可导致明显的图像质量和更快的代码转换时间。

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