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Study on the early detection of gastric cancer based on discrete wavelet transformation feature extraction of FT-IR spectra combined with probability neural network

机译:结合概率神经网络的FT-IR光谱离散小波变换特征提取在胃癌早期检测中的研究

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This paper introduces a new method for the early detection of gastric cancer using a combination of feature extraction based on discrete wavelet transformation (DWT) for horizontal attenuated total reflectance-Fourier transform infrared spectroscopy (HATR-FT-IR) and classification using probability neural network (PNN). 344 FT-IR spectra were collected from 172 pairs of fresh normal and abnormal stomach tissue’s samples. After preprocessing, 5 features were extracted with DWT analysis. Based on the PNN classification, all FT-IR spectra were classified into three categories. The accuracy of identifying normal gastric tissue, early gastric cancer tissue and gastric cancer tissue samples were 100.00, 97.56 and 100.00%, respectively. This result indicated that FT-IR with DWT and PNN could effectively and easily diagnose gastric cancer in its early stages.
机译:本文介绍了一种新的早期胃癌检测方法,该方法结合了基于离散小波变换(DWT)的特征提取和水平概率全反射傅里叶红外光谱(HATR-FT-IR)以及基于概率神经网络进行分类的特征提取方法。 (PNN)。从172对新鲜的正常和异常胃组织样本中收集了344个FT-IR光谱。预处理后,通过DWT分析提取了5个特征。根据PNN分类,将所有FT-IR光谱分为三类。鉴定正常胃组织,早期胃癌组织和胃癌组织样品的准确性分别为100.00%,97.56和100.00%。该结果表明,带有DWT和PNN的FT-IR可以在早期阶段有效,轻松地诊断胃癌。

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