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首页> 外文期刊>Computer Methods and Programs in Biomedicine: An International Journal Devoted to the Development, Implementation and Exchange of Computing Methodology and Software Systems in Biomedical Research and Medical Practice >Using image processing technology and mathematical algorithm in the automatic selection of vocal cord opening and closing images from the larynx endoscopy video
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Using image processing technology and mathematical algorithm in the automatic selection of vocal cord opening and closing images from the larynx endoscopy video

机译:使用图像处理技术和数学算法从喉镜检查视频中自动选择声带开合图像

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摘要

The human larynx is an important organ for voice production and respiratory mechanisms. The vocal cord is approximated for voice production and open for breathing. The videolaryngoscope is widely used for vocal cord examination. At present, physicians usually diagnose vocal cord diseases by manually selecting the image of the vocal cord opening to the largest extent (abduction), thus maximally exposing the vocal cord lesion. On the other hand, the severity of diseases such as vocal palsy, atrophic vocal cord is largely dependent on the vocal cord closing to the smallest extent (adduction). Therefore, diseases can be assessed by the image of the vocal cord opening to the largest extent, and the seriousness of breathy voice is closely correlated to the gap between vocal cords when closing to the smallest extent. The aim of the study was to design an automatic vocal cord image selection system to improve the conventional selection process by physicians and enhance diagnosis efficiency. Also, due to the unwanted fuzzy images resulting from examination process caused by human factors as well as the non-vocal cord images, texture analysis is added in this study to measure image entropy to establish a screening and elimination system to effectively enhance the accuracy of selecting the image of the vocal cord closing to the smallest extent.
机译:人喉是发声和呼吸机制的重要器官。声带近似于声音产生,并且可以呼吸。电子喉镜广泛用于声带检查。当前,医师通常通过最大程度地手动选择声带张开的图像(外展)来诊断声带疾病,从而最大程度地暴露声带病变。另一方面,诸如声带麻痹,萎缩性声带之类的疾病的严重程度在很大程度上取决于声带闭合到最小程度(内收)。因此,可以通过最大程度地打开声带的图像来评估疾病,并且当最小程度地闭合时,呼吸声的严重性与声带之间的间隙紧密相关。该研究的目的是设计一种自动声带图像选择系统,以改善医生的常规选择过程并提高诊断效率。此外,由于人为因素导致检查过程中产生了不必要的模糊图像以及非声带图像,本研究中添加了纹理分析以测量图像熵,从而建立了筛选和消除系统,从而有效地提高了图像的准确性。选择声带闭合程度最小的图像。

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