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SPEECH TO CHART: SPEECH RECOGNITION AND NATURAL LANGUAGE PROCESSING FOR DENTAL CHARTING

机译:语音图表:语音识别的语音识别和自然语言处理

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摘要

Typically, when using practice management systems (PMS), dentists perform data entry by utilizing an assistant as a transcriptionist. This prevents dentists from interacting directly with the PMSs. Speech recognition interfaces can provide the solution to this problem. Existing speech interfaces of PMSs are cumbersome and poorly designed. In dentistry, there is a desire and need for a usable natural language interface for clinical data entry. Objectives. (1) evaluate the efficiency, effectiveness, and user satisfaction of the speech interfaces of four dental PMSs, (2) develop and evaluate a speech-to-chart prototype for charting naturally spoken dental exams. Methods. We evaluated the speech interfaces of four leading PMSs. We manually reviewed the capabilities of each system and then had 18 dental students chart 18 findings via speech in each of the systems. We measured time, errors, and user satisfaction. Next, we developed and evaluated a speech-to-chart prototype which contained the following components: speech recognizer; post-processor for error correction; NLP application (ONYX) and; graphical chart generator. We evaluated the accuracy of the speech recognizer and the post-processor. We then performed a summative evaluation on the entire system. Our prototype charted 12 hard tissue exams. We compared the charted exams to reference standard exams charted by two dentists. Results. Of the four systems, only two allowed both hard tissue and periodontal charting via speech. All interfaces required using specific commands directly comparable to using a mouse. The average time to chart the nine hard tissue findings was 2:48 and the nine periodontal findings was 2:06. There was an average of 7.5 errors per exam. We created a speech-to-chart prototype that supports natural dictation with no structured commands. On manually transcribed exams, the system performed with an average 80% accuracy. The average time to chart a single hard tissue finding with the prototype was 7.3 seconds. An improved discourse processor will greatly enhance the prototype's accuracy. Conclusions. The speech interfaces of existing PMSs are cumbersome, require using specific speech commands, and make several errors per exam. We successfully created a speech-to-chart prototype that charts hard tissue findings from naturally spoken dental exams.
机译:通常,当使用实践管理系统(PMS)时,牙医通过使用助手作为转录员来执行数据输入。这可以防止牙医直接与PMS进行交互。语音识别接口可以为该问题提供解决方案。 PMS的现有语音接口笨重且设计不良。在牙科中,需要并且需要用于临床数据输入的可用自然语言界面。目标。 (1)评估四个牙科PMS语音界面的效率,有效性和用户满意度,(2)开发和评估用于绘制自然口语牙科检查图表的语音到图表原型。方法。我们评估了四个领先PMS的语音接口。我们手动审查了每个系统的功能,然后让18名牙科学生通过语音在每个系统中绘制了18个发现。我们测量了时间,错误和用户满意度。接下来,我们开发并评估了语音到图表原型,其中包含以下组件:语音识别器;后处理器用于纠错; NLP应用程序(ONYX)和;图形图表生成器。我们评估了语音识别器和后处理器的准确性。然后,我们对整个系统进行了总结评估。我们的原型绘制了12个硬组织检查的图表。我们将计划的考试与两名牙医制定的参考标准考试进行了比较。结果。在这四个系统中,只有两个系统允许通过语音进行硬组织和牙周标测。使用特定命令所需的所有接口都可以直接与使用鼠标相媲美。绘制9个硬组织发现的平均时间为2:48,而9个牙周发现为2:06。每次考试平均有7.5个错误。我们创建了一个语音到图表的原型,该原型支持无格式命令的自然命令。在手动转录的考试中,系统的平均准确度为80%。用原型绘制单个硬组织图的平均时间为7.3秒。改进的话语处理器将大大提高原型的准确性。结论。现有PMS的语音接口繁琐,需要使用特定的语音命令,并且每次检查都会出错。我们成功地创建了一个从语音到图表的原型,该原型可以绘制自然口齿检查中硬组织发现的图表。

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