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首页> 外文期刊>Radiotherapy and oncology: Journal of the European Society for Therapeutic Radiology and Oncology >Quantitative radiomics: Validating image textural features for oncological PET in lung cancer
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Quantitative radiomics: Validating image textural features for oncological PET in lung cancer

机译:定量辐射瘤:验证肺癌肿瘤宠物的图像纹理特征

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摘要

Background and purposeRadiomics textural features derived from PET imaging are of broad and current interest due to recent evidence of their prognostic value during cancer management. An inherent assumption is the link between these imaging features and the underlying tumoral phenotypic spatial heterogeneity. The purpose of this work was to validate this assumption for tumors within the lung through a comparison of image based textural features and the ground truth activity distribution from which the images were created. A second purpose was to assess the level at which PET imaging introduces spatial texture not present in the associated ground truth activity distribution. Materials and methods25 lung lesions were created using an anthropomorphic phantom. Ten of the lesions had a spherical shape with a uniform activity distribution. The remaining 15 had an irregular shape with a heterogeneous activity distribution. PET images were created for each lesion using Monte Carlo simulation. 79 textural features related to the gray-level intensity histograms, co-occurrence matrices, neighborhood difference matrices, run length, and size zone matrices were derived from both the simulated PET images and ground truth activity maps. A comparison was made between the two datasets using statistical analysis. ResultsFor homogenous lesions, features extracted from the PET images were largely irrelevant to the underlying uniform activity distribution. Additionally, the majority of these features assumed substantial values implying that an extensive amount of spatial texture had been introduced into the final imaging data. For heterogeneous lesions, complex trends were observed in the deviation between features extracted from PET images and those extracted from the ground truth activity maps. Moreover, the extent of both the deviation and the associated dynamic range was seen to be greatly feature-dependent. ConclusionThe use of image based textural features as a surrogate for tumoral phenotypic spatial heterogeneity could not be clearly validated. The association between the two is complex and a significant amount of uncertainty exist due to the introduction of incidental texture during image acquisition and reconstruction.
机译:由于近期癌症管理期间预后价值的证据,因此源自宠物成像的背景和Purposeradiomics纹理特征具有广泛和流动的兴趣。固有假设是这些成像特征与潜在的肿瘤表型空间异质性之间的链接。这项工作的目的是通过比较基于图像的纹理特征和创建图像的地面真理活动分布来验证肺内的肿瘤的这种假设。第二种目的是评估PET成像在相关地面真理活动分布中引入空间纹理的水平。材料和方法使用拟蒽型幻影产生25肺病变。十个病变具有球形,具有均匀的活性分布。其余15具有不规则的形状,具有异质活性分布。使用Monte Carlo仿真为每个病变创建PET图像。从模拟PET图像和地面真理活动映射导出了与灰度强度直方图,共发生矩阵,邻域差差矩阵,运行长度和大小区矩阵相关的纹理特征。使用统计分析在两个数据集之间进行比较。结果为均匀的病变,从PET图像中提取的特征与潜在的均匀活性分布有很大无关。另外,这些特征中的大多数假设了大量值,这意味着已经引入了最终的成像数据中的广泛空间纹理。对于异质病变,在从PET图像中提取的特征之间的偏差和从地面真理活动映射提取的特征之间的偏差观察到复杂趋势。此外,偏离和相关动态范围的程度被认为是大具有较大的特征。结论,使用基于图像的纹理特征作为肿瘤表型空间异质性的替代物不能明确验证。两者之间的关联是复杂的,并且由于在图像采集和重建期间引入偶然纹理而存在大量不确定性。

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