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使用扫描路径评估融合视频:数据分析方法的比较

Assessment of fused videos using scanpaths: a comparison of data analysis methods.

作者信息

Dixon Timothy D, Nikolov Stavri G, Lewis John J, Li Jian, Canga Eduardo Fernandez, Noyes Jan M, Troscianko Tom, Bull Dave R, Canagarajah C Nishan

机构信息

Department of Experimental Psychology, University of Bristol, 12a Priory Rd, Bristol, BS8 1TU, UK.

出版信息

Spat Vis. 2007;20(5):437-66. doi: 10.1163/156856807781503659.

Abstract

The increased interest in image fusion (combining images of two or more modalities such as infrared and visible light radiation) has led to a need for accurate and reliable image assessment methods. Previous work has often relied upon subjective quality ratings combined with some form of computational metric analysis. However, we have shown in previous work that such methods do not correlate well with how people perform in actual tasks utilising fused images. The current study presents the novel use of an eye-tracking paradigm to record how accurately participants could track an individual in various fused video displays. Participants were asked to track a man in camouflage outfit in various input videos (visible and infrared originals, a fused average of the inputs; and two different wavelet-based fused videos) whilst also carrying out a secondary button-press task. The results were analysed in two ways, once calculating accuracy across the whole video, and by dividing the video into three time sections based on video content. Although the pattern of results depends on the analysis, the accuracy for the inputs was generally found to be significantly worse than that for the fused displays. In conclusion, both approaches have good potential as new fused video assessment methods, depending on what task is carried out.

摘要

对图像融合(将两种或更多模态的图像,如红外和可见光辐射图像进行合并)的兴趣增加,导致了对准确且可靠的图像评估方法的需求。先前的工作常常依赖于主观质量评级以及某种形式的计算指标分析。然而,我们在先前的工作中已经表明,此类方法与人们在实际使用融合图像的任务中的表现相关性不佳。当前的研究提出了一种新颖的眼动追踪范式的应用,以记录参与者在各种融合视频显示中追踪个体的准确程度。参与者被要求在各种输入视频(可见光和红外原始视频、输入视频的融合平均值;以及两种不同的基于小波的融合视频)中追踪一名穿着迷彩服的男子,同时还要执行一个次要的按键任务。结果通过两种方式进行分析,一种是计算整个视频的准确率,另一种是根据视频内容将视频分为三个时间段进行分析。尽管结果模式取决于分析方式,但总体上发现输入视频的准确率明显低于融合显示的准确率。总之,根据所执行的任务,这两种方法作为新的融合视频评估方法都具有良好的潜力。

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