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Segmentation of multiple objects evolving conditional random field based topology adaptive active membrane

机译:基于条件随机场的拓扑自适应有源膜多目标分割

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In this paper we have used conditional random field based learning scheme to differentiate the spectral signature of the objects and background in a scene. The overall objective is to segment multiple objects in a poorly contrasted scene. The primary tool for segmentation is a region based active membrane which evolves under image based external energy. The learning scheme helps in splitting the active membrane for segmenting multiple objects and integrates the topology adaptive property of the active membrane with the architecture and evolution of the membrane. The proposed approach is tested in a challenging application domain of estimation of sizes of oil sand rocks.
机译:在本文中,我们使用了基于条件随机场的学习方案来区分场景中物体和背景的光谱特征。总体目标是在对比度较差的场景中分割多个对象。分割的主要工具是基于区域的活性膜,该区域在基于图像的外部能量下进化。该学习方案有助于分裂用于分割多个对象的活性膜,并将活性膜的拓扑适应性与膜的结构和演化相结合。在估计油砂岩尺寸的具有挑战性的应用领域中对提出的方法进行了测试。

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