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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Aggregation pheromone metaphor for semi-supervised classification
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Aggregation pheromone metaphor for semi-supervised classification

机译:用于半监督分类的聚合信息素隐喻

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摘要

This article presents a novel 'self-training' based semi-supervised classification algorithm using the property of aggregation pheromone found in real ants. The proposed method has no assumption regarding the data distribution and is free from parameters to be set by the user. It can also capture arbitrary shapes of the classes. The proposed algorithm is evaluated with a number of synthetic as well as real life benchmark datasets in terms of accuracy, macro and micro averaged F_1 measures. Results are compared with two supervised and three semi-supervised classification techniques and are statistically validated using paired t-test. Experimental results show the potentiality of the proposed algorithm.
机译:本文利用在真实蚂蚁中发现的聚集信息素的特性,提出了一种新颖的基于“自我训练”的半监督分类算法。所提出的方法没有关于数据分布的假设,并且没有用户要设置的参数。它还可以捕获类的任意形状。在准确性,宏平均和微观平均F_1量度方面,使用许多合成的以及现实生活中的基准数据集对提出的算法进行了评估。将结果与两种监督分类法和三种半监督分类法进行比较,并使用配对t检验进行统计学验证。实验结果表明了该算法的潜力。

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