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Concept-based indexing of annotated images using semantic DNA

机译:使用语义DNA的基于概念的带注释图像索引

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One of the challenges in image retrieval is dealing with concepts which have no visual appearance in the images or are not used as keywords in their annotations. To address this problem, this paper proposes an unsupervised concept-based image indexing technique which uses a lexical ontology to extract semantic signatures called 'semantic chromosomes' from image annotations. A semantic chromosome is an information structure, which carries the semantic information of an image; it is the semantic signature of an image in a collection expressed through a set of semantic DNA (SDNA), each of them representing a concept. Central to the concept-based indexing technique discussed is the concept disambiguation algorithm developed, which identifies the most relevant 'semantic DNA' (SDNA) by measuring the semantic importance of each word/phrase in the annotation. The concept disambiguation algorithm is evaluated using crowdsourcing. The experiments show that the algorithm has better accuracy (79.4%) than the accuracy demonstrated by other unsupervised algorithms (73%) in the 2007 Semeval competition. It is also comparable with the accuracy achieved in the same competition by the supervised algorithms (82-83%) which contrary to the approach proposed in this paper have to be trained with large corpora. The approach is currently applied to the automated generation of mood boards used as an inspirational tool in concept design.
机译:图像检索中的挑战之一是处理在图像中没有视觉外观或在其注释中不用作关键字的概念。为了解决这个问题,本文提出了一种基于概念的无监督图像索引技术,该技术使用词法本体从图像注释中提取称为“语义染色体”的语义签名。语义染色体是一种信息结构,承载图像的语义信息。它是通过一组语义DNA(SDNA)表示的集合中图像的语义签名,每个语义DNA代表一个概念。讨论的基于概念的索引技术的核心是开发的概念消歧算法,该算法通过测量注释中每个单词/短语的语义重要性来识别最相关的“语义DNA”(SDNA)。使用众包评估概念消歧算法。实验表明,与2007年Semeval竞赛中其他无监督算法所证明的准确性(73%)相比,该算法具有更好的准确性(79.4%)。它也可以与监督算法在相同比赛中获得的准确性(82-83%)相媲美,这与本文提出的方法相反,必须使用大型语料库进行训练。该方法目前应用于自动生成的情绪板,在概念设计中用作启发性工具。

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