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Selection of best match keyword using spoken term detection for spoken document indexing

机译:使用语音术语检测为语音文档索引选择最佳匹配关键字

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This paper presents a novel keyword selection-based spoken document-indexing framework that selects the best match keyword from query candidates using spoken term detection (STD) for spoken document retrieval. Our method comprises creating a keyword set including keywords that are likely to be in a spoken document. Next, an STD is conducted for all the keywords as query terms for STD; then, the detection result, a set of each keyword and its detection intervals in the spoken document, is obtained. For the keywords that have competitive intervals, we rank them based on the matching cost of STD and select the best one with the longest duration among competitive detections. This is the final output of STD process and serves as an index word for the spoken document. The proposed framework was evaluated on lecture speeches as spoken documents in an STD task. The results show that our framework was quite effective for preventing false detection errors and in annotating keyword indices to spoken documents.
机译:本文提出了一种新颖的基于关键字选择的语音文档索引框架,该框架使用语音术语检索(STD)从查询候选中选择最匹配的关键字。我们的方法包括创建关键词集,该关键词集包括可能在语音文档中的关键词。接下来,对所有关键词进行STD作为STD的查询词。然后,获得检测结果,语音文档中每个关键词的集合及其检测间隔。对于具有竞争间隔的关键字,我们根据STD的匹配成本对它们进行排名,并在竞争检测中选择持续时间最长的最佳关键字。这是STD过程的最终输出,并用作语音文档的索引词。建议的框架在演讲演讲中作为STD任务中的口头文件进行了评估。结果表明,我们的框架在防止错误检测错误和注释语音文档的关键词索引方面非常有效。

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