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An efficient implementation of the channelized Hotelling observer for task-based assessment of lossy compressed images

机译:通道化Hotelling观察器的有效实现,用于基于任务的有损压缩图像评估

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An efficient subband implementation of the channelized Hotelling observer is presented, which can be used to assess the image quality of images compressed with wavelet-based techniques. The channelized Hotelling model observer has been shown to predict human performance in detecting signals in noise-limited images. The model observer can also predict degradation of human performance due to lossy compressed images. This provides a more relevant image quality assessment for medical images, where the image's value is in supporting clinical decisions, than metrics such as mean square error. The subband implementation shown is unique in that it operates on channel responses of the wavelet subbands rather than on the entire image itself. The technique is extendable to operate on the channel response of the subband bitmaps, which would permit bit ordering optimized for human performance.
机译:提出了信道化Hotelling观测器的有效子带实现,可用于评估使用基于小波的技术压缩的图像的图像质量。通道化的Hotelling模型观察者已被证明可以预测人类在噪声受限图像中检测信号的性能。模型观察者还可以预测由于有损压缩图像而导致的人的性能下降。与诸如均方误差之类的指标相比,这为医学图像提供了更相关的图像质量评估,其中图像的价值在于支持临床决策。所示的子带实现是独特的,因为它对小波子带的信道响应进行操作,而不是对整个图像本身进行操作。该技术可扩展以对子带位图的信道响应进行操作,这将允许针对人类性能优化的位排序。

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