首页> 外文会议>Scandinavian Conference on Image Analysis(SCIA 2005); 20050619-22; Joensuu(FI) >Paving the Way for Image Understanding: A New Kind of Image Decomposition Is Desired
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Paving the Way for Image Understanding: A New Kind of Image Decomposition Is Desired

机译:为图像理解铺平道路:需要一种新型的图像分解

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In this paper we present an unconventional image segmentation approach which is devised to meet the requirements of image understanding and pattern recognition tasks. Generally image understanding assumes interplay of two sub-processes: image information content discovery and image information content interpretation. Despite of its widespread use, the notion of "image information content" is still ill defined, intuitive, and ambiguous. Most often, it is used in the Shannon's sense, which means information content assessment averaged over the whole signal ensemble. Humans, however, rarely resort to such estimates. They are very effective in decomposing images into their meaningful constituents and focusing attention to the perceptually relevant image parts. We posit that following the latest findings in human attention vision studies and the concepts of Kolmogorov's complexity theory an unorthodox segmentation approach can be proposed that provides effective image decomposition to information preserving image fragments well suited for subsequent image interpretation. We provide some illustrative examples, demonstrating effectiveness of this approach.
机译:在本文中,我们提出了一种非常规的图像分割方法,旨在满足图像理解和模式识别任务的需求。通常,图像理解假定两个子过程的相互作用:图像信息内容发现和图像信息内容解释。尽管其广泛使用,但是“图像信息内容”的概念仍然定义不清,直观且含糊。通常,它是在Shannon的意义上使用的,这意味着信息内容评估是在整个信号集合中平均的。然而,人类很少诉诸于这样的估计。它们在将图像分解成有意义的成分并将注意力集中在与感知相关的图像部分方面非常有效。我们认为,根据人类注意力视觉研究的最新发现和Kolmogorov复杂性理论的概念,可以提出一种非传统的分割方法,该方法可以为保留信息的图像片段提供有效的图像分解,非常适合后续图像的解释。我们提供了一些说明性示例,证明了这种方法的有效性。

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