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首页> 外文期刊>International journal of image and data fusion >Model-based view at multi-resolution image fusion methods and quality assessment measures
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Model-based view at multi-resolution image fusion methods and quality assessment measures

机译:多分辨率图像融合方法和质量评估措施的基于模型的视图

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摘要

We propose to look at multi-resolution image fusion or pan-sharpening task from a model-based perspective. Explicit definition of all models or assumptions used in the derivation of a fusion method allows us to understand the rationale or properties of existing methods and shows a way for a proper usage or proposal/selection of new methods better satisfying the needs of a particular application. Earlier mentioned property 'better' should be measurable quantitatively, e.g. by means of so-called quality measures. The difficulty of a quality assessment task in multi-resolution image fusion is that a reference image is missing. Existing measures or so-called protocols are still not satisfactory because quite often the rationale or assumptions are not valid or not fulfilled. From a model-based view, it follows naturally that a quality assessment measure can be defined as a combination of error model residuals using common or general models assumed in fusion methods. It is shown that most existing methods based on a spectral transformation or filtering are model-based methods. Unfortunately, it was found out that they are based additionally on a pure pixels assumption. Application of such methods for mixed pixels can lead to wrong fusion results. Model-based view analysis shows which methods respect models assumed and thus can help to select methods which deliver correct or physically justified fusion results.
机译:我们建议从基于模型的角度来看多分辨率图像融合或泛锐化任务。对在融合方法推导中使用的所有模型或假设的明确定义,使我们能够了解现有方法的原理或性质,并显示了正确使用或提议/选择新方法的方法,可以更好地满足特定应用的需求。前面提到的属性“更好”应该是可量化的,例如通过所谓的质量措施。在多分辨率图像融合中,质量评估任务的困难在于缺少参考图像。现有的措施或所谓的协议仍然不能令人满意,因为很多理由或假设是无效或不成立的。从基于模型的角度出发,自然可以得出以下结论:可以使用融合方法中假定的通用或通用模型将质量评估措施定义为误差模型残差的组合。结果表明,大多数基于频谱变换或滤波的现有方法都是基于模型的方法。不幸的是,发现它们还基于纯像素假设。将此类方法应用于混合像素可能会导致错误的融合结果。基于模型的视图分析显示了哪些方法符合假定的模型,因此可以帮助选择能够提供正确或物理上合理的融合结果的方法。

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