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Latent Dirichlet Allocation for Spatial Analysis of Satellite Images

机译:潜在Dirichlet分配用于卫星图像的空间分析

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This paper describes research that seeks to supersede human inductive learning and reasoning in high-level scene understanding and content extraction. Searching for relevant knowledge with a semantic meaning consists mostly in visual human inspection of the data, regardless of the application. The method presented in this paper is an innovation in the field of information retrieval. It aims to discover latent semantic classes containing pairs of objects characterized by a certain spatial positioning. A hierarchical structure is recommended for the image content. This approach is based on a method initially developed for topics discovery in text, applied this time to invariant descriptors of image region or objects configurations. First, invariant spatial signatures are computed for pairs of objects, based on a measure of their interaction, as attributes for describing spatial arrangements inside the scene. Spatial visual words are then defined through a simple classification, extracting new patterns of similar object configurations. Further, the scene is modeled according to these new patterns (spatial visual words) using the latent Dirichlet allocation model into a finite mixture over an underlying set of topics. In the end, some statistics are done to achieve a better understanding of the spatial distributions inside the discovered semantic classes.
机译:本文介绍了旨在在高层场景理解和内容提取中取代人类归纳学习和推理的研究。无论具有什么用途,搜索具有语义含义的相关知识主要包括对数据进行可视的人工检查。本文提出的方法是信息检索领域的一项创新。它旨在发现潜在的语义类,其中包含具有特定空间定位特征的对象对。建议对图像内容使用分层结构。该方法基于最初为文本中的主题发现而开发的方法,这次将其应用于图像区域或对象配置的不变描述符。首先,基于对象对的交互作用的度量,为对象对计算不变的空间特征,作为描述场景内部空间布置的属性。然后,通过简单的分类定义空间视觉单词,提取相似对象配置的新模式。此外,使用潜在的Dirichlet分配模型根据这些新模式(空间视觉单词)对场景进行建模,使其成为基础主题集的有限混合。最后,进行一些统计以更好地了解所发现的语义类内部的空间分布。

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