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A clonal selection algorithm for classification of mangroves remote sensing image

机译:一种红树林遥感图像分类的克隆选择算法

摘要

As a new computational intelligence model based on artificial immune systems, clonal selection algorithm has been widely utilized for data analysis and pattern recognition. Recently it was applied to remote-sensing image classification. However, due to the similar spectral feature between mangroves and other land cover types such as agricultural land and forests, serious misclassification and confusion can develop in mangroves classification using conventional methods. This paper proposes a clonal selection based supervised classification algorithm which takes into account not only spectral feature but also geographical feature and image feature. The proposed algorithm searches the best cluster centers for various types of training samples by the improved clonal selection algorithm. The antibody represents the candidate solution, while antigen is reflected by affinity function. The antibody is encoding by decimal way. The inner superiority and the outer superiority together are used to measure the superiority of antibody. The selection operator and mutation operator are designed to guarantee the diversity and global optimality. Experiments are performed and the results show that the proposed method can improve the extraction accuracy of mangroves effectively. ? 2014 SERSC.
机译:作为一种基于人工免疫系统的新型计算智能模型,克隆选择算法已被广泛用于数据分析和模式识别。最近,它被应用于遥感图像分类。但是,由于红树林和其他土地覆盖类型(如农业用地和森林)之间具有相似的光谱特征,因此在使用常规方法进行的红树林分类中可能会出现严重的分类错误和混淆。提出了一种基于克隆选择的监督分类算法,该算法不仅考虑了光谱特征,还考虑了地理特征和图像特征。提出的算法通过改进的克隆选择算法搜索最佳聚类中心以获取各种类型的训练样本。抗体代表候选溶液,而抗原则由亲和功能反映出来。抗体以十进制方式编码。内部优越性和外部优越性一起用于测量抗体的优越性。选择算子和变异算子旨在确保多样性和全局最优性。实验结果表明,该方法可以有效提高红树林的提取精度。 ? 2014 SERSC。

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