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首页> 外文期刊>International Journal of Cancer =: Journal International du Cancer >In vivo diagnosis of gastric cancer using Raman endoscopy and ant colony optimization techniques.
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In vivo diagnosis of gastric cancer using Raman endoscopy and ant colony optimization techniques.

机译:使用拉曼内窥镜和蚁群优化技术对胃癌进行体内诊断。

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This study aims to evaluate the clinical utility of image-guided Raman endoscopy for in vivo diagnosis of neoplastic lesions in the stomach at gastroscopy. A rapid-acquisition image-guided Raman endoscopy system with 785-nm excitation has been developed to acquire in vivo gastric tissue Raman spectra within 0.5 sec during clinical gastroscopic examinations. A total of 1,063 in vivo Raman spectra were acquired from 238 tissue sites of 67 gastric patients, in which 934 Raman spectra were from normal tissue whereas 129 Raman spectra were from neoplastic gastric tissue. The swarm intelligence-based algorithm (i.e., ant colony optimization (ACO) integrated with linear discriminant analysis (LDA)) was developed for spectral variables selection to identify the biochemical important Raman bands for differentiation between normal and neoplastic gastric tissue. The ACO-LDA algorithms together with the leave-one tissue site-out, cross validation method identified seven diagnostically important Raman bands in the regions of 850-875, 1,090-1,110, 1,120-1,130, 1,170-1,190, 1,320-1,340, 1,655-1,665 and 1,730-1,745 cm(-1) related to proteins, nucleic acids and lipids of tissue and provided a diagnostic sensitivity of 94.6% and specificity of 94.6% for distinction of gastric neoplasia. The predictive sensitivity of 89.3% and specificity of 97.8% were also achieved for an independent test validation dataset (20% of total dataset). This work demonstrates for the first time that the real-time image-guided Raman endoscopy associated with ACO-LDA diagnostic algorithms has potential for the noninvasive, in vivo diagnosis and detection of gastric neoplasia during clinical gastroscopy.
机译:这项研究的目的是评估在胃镜检查中图像引导的拉曼内窥镜在体内诊断胃肿瘤性病变的临床实用性。已经开发了具有785 nm激发的快速采集图像引导的拉曼内窥镜系统,以在临床胃镜检查过程中在0.5秒内获取体内胃组织的拉曼光谱。从67例胃病患者的238个组织部位获得了1,063个体内拉曼光谱,其中934个拉曼光谱来自正常组织,而129个拉曼光谱来自赘生性胃组织。开发了基于群体智能的算法(即与线性判别分析(LDA)集成在一起的蚁群优化(ACO))以进行光谱变量选择,以识别生化重要的拉曼谱带,以区分正常胃和赘生性胃组织。 ACO-LDA算法与留一法则的组织外交叉验证方法一起鉴定了在850-875、1,090-1,110、1,120-1,130、1,170-1,190、1,320-1,340、1,655区域中的七个诊断上重要的拉曼谱带-1,665和1,730-1,745 cm(-1)与组织的蛋白质,核酸和脂质有关,提供94.6%的诊断敏感性和94.6%的胃癌形成特异性。对于独立的测试验证数据集(占总数据集的20%),也达到了89.3%的预测敏感性和97.8%的特异性。这项工作首次证明,与ACO-LDA诊断算法相关的实时图像引导拉曼内窥镜具有在临床胃镜检查期间无创,体内诊断和检测胃瘤形成的潜力。

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