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Image Data Mining and Classification with DTree Ensembles for Linguistic Tagging

机译:与语言标记的DTREE合奏的图像数据挖掘和分类

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摘要

Linguistic tagging of images require proper detection of language concepts from pictures, which is a challenging issue. Preparation of representative samples to demonstrate concepts is the first step; learning parameters from those training samples and setting up a classifier is the next step; proper tag set definition, extraction of relative contextual concepts, filtering and inference drawing for output tag set generation is the last step. A system based on a variant of an ensemble of decision trees classifier is developed which achieves promising results in classifying images targeted for linguistic tagging. A simple tag reconstruction strategy from classification voting information has been proposed.
机译:图像的语言标记需要正确检测来自图片的语言概念,这是一个具有挑战性的问题。制备代表性样本展示概念是第一步;从这些训练样本和设置分类器的学习参数是下一步;适当的标签集定义,提取相对上下文概念,过滤和输出标记集的引诱画的生成是最后一步。基于决策树分类器的集合的变型的系统进行了开发,其实现了有希望的结果,在分类针对语言标记的图像中。提出了一种简单的标签重建策略,来自分类投票信息。

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