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Nature-Inspired Optimization Algorithms and Their Application in Multi-Thresholding Image Segmentation

机译:自然启发优化算法及其在多阈值图像分割中的应用

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摘要

In the field of image processing, there are several problems where an efficient search of the solutions has to be performed within a complex search domain to find an optimal solution. Multi-thresholding which is a very important image segmentation technique is one of them. The multi-thresholding problem is simply an exponential combinatorial optimization process which traditionally is formulated based on complex objective function criterion which can be solved using only nondeterministic methods. Under such circumstances, there is also no unique measurement which quantitatively judges the quality of a given segmented image. Therefore, researchers are solving those issues by using Nature-Inspired Optimization Algorithms (NIOAs) as alternative methodologies for the multi-thresholding problem. This study presents an up-to-date review on all most important NIOAs employed in multi-thresholding based image segmentation domain. The key issues which are involved during the formulation of NIOAs based image multi-thresholding models are also discussed here.
机译:在图像处理领域中,必须在复杂搜索域内进行有效搜索解决方案的几个问题,以找到最佳解决方案。多阈值,这是一个非常重要的图像分割技术是其中之一。多阈值问题仅仅是一种指数组合优化过程,其传统上是基于复杂的物镜函数标准来配制,这可以仅使用非必需的方法来解决。在这种情况下,也没有单独的测量,该测量值定量判断给定分段图像的质量。因此,研究人员通过使用自然启发的优化算法(NIOA)作为多阈值问题的替代方法来解决这些问题。本研究提出了关于基于多阈值的图像分割域中使用的所有最重要的NIOA的最新审查。这里还讨论了在制定基于NIOA的图像多阈值模型期间参与的关键问题。

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    Midnapore Coll Autonomous Dept Comp Sci & Applicat Paschim Medinipur West Bengal India;

    Kalyani Govt Engn Coll Dept Informat Technol Kalyani Nadia India;

    Mass Software Solut Pvt Ltd Kolkata West Bengal India;

    Univ Guadalajara Dept Elect CUCEI Av Revoluc 500 Guadalajara 44430 Jalisco Mexico;

    Univ Kalyani Dept Engn & Technol Studies Kalyani Nadia India;

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