跨模态表示的增量信息融合体系结构

Christopher Baumgärtner, Niels Beuck, W. Menzel
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引用次数: 6

摘要

我们提出了一种用于自然语言处理的架构,该架构增量地解析输入句子,并将有关其结构的信息与视觉输入的表示合并,从而改变解析的结果。在增量处理的每一步中,判断上下文表示中的元素是否与该步骤之前的句子片段的内容匹配。然后,最佳匹配子集中包含的信息会影响子句解析的结果。随着处理的进行和句子的扩展,通过添加新词,新的信息在上下文中搜索,以与扩展的语言输入一致。这种增量式的信息融合方法对于从不断变化的环境中提取的动态知识的集成具有很高的适应性。
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An architecture for incremental information fusion of cross-modal representations
We present an architecture for natural language processing that parses an input sentence incrementally and merges information about its structure with a representation of visual input, thereby changing the results of parsing. At each step of incremental processing, the elements in the context representation are judged whether they match the content of the sentence fragment up to that step. The information contained in the best matching subset then influences the result of parsing the subsentence. As processing progresses and the sentence is extended by adding new words, new information is searched in the context to concur with the expanded language input. This incremental approach to information fusion is highly adaptable with regard to the integration of dynamic knowledge extracted from a constantly changing environment.
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