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On the accuracy of short-term quality models for long-term quality prediction

机译:关于用于长期质量预测的短期质量模型的准确性

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With video services such as HTTP-based adaptive streaming, network congestion may result in quality fluctuations over several minutes. There is therefore a need for estimating the quality of long audiovisual sequences. This can be achieved by using short-term audiovisual quality models, which output quality scores for short periods of time, for instance 10 s. Temporal pooling such as averaging is typically applied on the short-term quality estimates for providing a quality score for a longer time period, for instance three minutes. With this modeling strategy, the performance of the overall quality model can be increased by improving both the short-term quality model and the temporal pooling strategy. However, depending on the temporal pooling strategy, and possibly the targeted test data obtained for long sequences, a small improvement of the short-term quality model may eventually not have any significant impact on the long-term quality estimates. This paper investigates this aspect by comparing the performance results of the combination of six short-term quality models with six different pooling strategies. Results show that the performance of well performing short term models is a good indicator of the performance of the long-term quality models, independently of the pooling strategy.
机译:使用基于HTTP的自适应流之类的视频服务,网络拥塞可能会导致几分钟的质量波动。因此,需要估计长的视听序列的质量。这可以通过使用短期视听质量模型来实现,该模型在较短的时间段(例如10 s)中输出质量得分。诸如平均的时间合并通常应用于短期质量估计,以提供较长时间段(例如三分钟)的质量得分。使用这种建模策略,可以通过同时改善短期质量模型和时间合并策略来提高整体质量模型的性能。但是,根据时间合并策略以及可能从长序列中获得的目标测试数据,短期质量模型的小改进最终可能不会对长期质量估计产生任何重大影响。本文通过比较六个短期质量模型与六个不同的合并策略的性能结果来研究此方面。结果表明,表现良好的短期模型的性能可以很好地指示长期质量模型的性能,而与合并策略无关。

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