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Genetic algorithms for object recognition in a complex scene

机译:用于复杂场景中物体识别的遗传算法

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A realworld computer vision module must deal with a wide variety of environmental parameters. Object recognition, one of the major tasks of this vision module, typically requires a preprocessing step to locate objects in the scenes that ought to be recognized. Genetic algorithms are a search technique for dealing with a very large search space, such as the one encountered in image segmentation or object recognition. The article describes a technique for using genetic algorithms to combine the image segmentation and object recognition steps for a complex scene. The results show that this approach is a viable method for successfully combining the image segmentation and object recognition steps for a computer vision module.
机译:现实世界中的计算机视觉模块必须处理各种各样的环境参数。对象识别是此视觉模块的主要任务之一,通常需要预处理步骤以在场景中定位应识别的对象。遗传算法是一种用于处理非常大的搜索空间(例如在图像分割或对象识别中遇到的搜索空间)的搜索技术。本文介绍了一种使用遗传算法将复杂场景的图像分割和对象识别步骤结合起来的技术。结果表明,该方法是一种成功地将计算机视觉模块的图像分割和目标识别步骤相结合的可行方法。

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