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Improving the Utility of Speech Recognition Through Error Detection

机译:通过错误检测提高语音识别的实用性

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摘要

Despite the potential to dominate radiology reporting, current speech recognition technology is thus far a weak and inconsistent alternative to traditional human transcription. This is attributable to poor accuracy rates, in spite of vendor claims, and the wasted resources that go into correcting erroneous reports. A solution to this problem is post-speech-recognition error detection that will assist the radiologist in proofreading more efficiently. In this paper, we present a statistical method for error detection that can be applied after transcription. The results are encouraging, showing an error detection rate as high as 96% in some cases.
机译:尽管有潜力主导放射学报告,但迄今为止,当前的语音识别技术仍是传统人类转录技术的薄弱且不一致的选择。这是由于尽管有供应商的要求,但准确率仍然很差,并且浪费了用于纠正错误报告的资源。解决此问题的方法是语音识别后错误检测,它将帮助放射线医师更有效地校对。在本文中,我们提出了一种用于错误检测的统计方法,该方法可以在转录后应用。结果令人鼓舞,在某些情况下,错误检测率高达96%。

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