From images to sentences via spatial relations

A. Abella, J. Kender
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引用次数: 22

Abstract

This work presents a conceptual framework for representing, manipulating, measuring, and communicating in natural language several ideas about topological (non-metric) spatial locations, object spatial contexts, and user expectations of spatial relationships. It articulates a theory of spatial relations, how they can be represented as fuzzy predicates internally, and how they can be appropriately derived from, imagery; then, how they can be augmented or filtered using prior knowledge, and lastly, how they can produce natural language statements about location and space. This framework quantifies the notions of context and vagueness, so that all spatial relations are measurably accurate, provably efficient, and matched to users' expectations. The work makes explicit two critical heuristics for reducing the complexity of the relationships implicit in imagery, one a general rule for single object descriptions, and the other a general rule for rank ordering object relationships. A derived working system combines variable aspects of computer science and linguistics in such a way so as to be extensible to many environments. The system has been demonstrated both in, a landmark navigation task and in a medical task, two very separate domains, and has been evaluated in both.
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通过空间关系从图像到句子
这项工作提出了一个概念框架,用于用自然语言表示、操作、测量和交流关于拓扑(非度量)空间位置、对象空间上下文和空间关系的用户期望的几个想法。它阐明了空间关系的理论,它们如何在内部被表示为模糊谓词,以及它们如何从图像中适当地推导出来;然后,如何使用先验知识对它们进行增强或过滤,最后,它们如何生成关于位置和空间的自然语言陈述。这个框架量化了上下文和模糊性的概念,因此所有的空间关系都是可测量的准确,可证明的有效,并符合用户的期望。这项工作明确了两个关键的启发式方法,用于减少图像中隐含的关系的复杂性,一个是单个对象描述的一般规则,另一个是排序对象关系的一般规则。派生的工作系统结合了计算机科学和语言学的可变方面,从而可以扩展到许多环境。该系统已经在地标导航任务和医疗任务这两个非常独立的领域进行了演示,并在这两个领域进行了评估。
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