基于上下文模型的像素化图像视觉显著区域检测

S. Jin, I.B. Lee, J.M. Han, K.S. Park
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引用次数: 1

摘要

为了克服视觉假体的分辨率限制,人们提出了各种图像处理方法。这些方法局限于人脸或物体的特写图像。然而,在真实环境中,图像中除了包含人脸、字母等预先定义好的物体外,还包含一些意想不到的视觉显著物体,这些物体为图像提供了重要的信息。本文采用基于上下文的模型,提出了一种适合于真实情境的兴趣区域检测方法,并证明了检测到的兴趣区域具有引导注意力的作用。在观察两种像素化图像时,分别对被试的视线进行估计,并与实验检测到的显著区域进行比较。结果表明,基于上下文的视觉吸引区域检测模型可以有效地解决分辨率限制问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Visually-Salient Region Detection in the Pixelized Image using Context-Based Model
To overcome the resolution limitation in the visual prosthesis, various image processing methods have been proposed. These methods are limited for close-up images of faces or objects. However, images in real environment contain not only the predefined objects such as faces and letters but also unexpected visually-salient objects which give important information on the images. In this paper, we propose the region-of-interest detection method which is appropriate for real situations using a context-based model, and demonstrate that the detected region can guide attention. The gazes are estimated while subjects are watching two kinds of pixelized images obtained by a conventional method and the proposed method, and are compared with experimentally detected conspicuous region. The results show that the context-based model detecting visually-attractive region is useful to solve the resolution limitation.
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