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Toward the automatic extraction of knowledge of usable goods

机译:朝着自动提取可用商品知识

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Knowledge of usable goods (e.g., toothbrush is used to clean the teeth and treadmill is used for exercise) is ubiquitous and in constant demand. This study proposes semantic labels to capture aspects of knowledge of usable goods and builds a benchmark corpus, Usable Goods Corpus, to explore this new semantic labeling task. Our human annotation experiment shows that human annotators can generally identify pieces of information of usable goods in text. Our first attempt toward the automatic identification of such knowledge shows that a model using conditional random fields approaches the human annotation (F score 73.2%). These results together suggest future directions to build a large-scale corpus and improve the automatic identification of knowledge of usable goods.
机译:知识可用商品(例如,牙刷用于清洁牙齿,跑步机用于运动)是普遍存在的,持续的需求。本研究提出了语义标签来捕获可用商品知识的方面,并建立基准语料库,可用商品语料库,探索这种新的语义标签任务。我们的人体注释实验表明,人类注册人通常可以在文本中识别可用商品的信息。我们首次尝试自动识别这些知识表明,使用条件随机字段的模型接近人类注释(F分73.2%)。这些结果共同建议未来的方向建立大规模的语料库,并改善自动识别可用商品知识。

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