肇庆市医疗保障局鼎湖分局依申请办理政务服务事项清单|政务服务数据集|数据分析数据集
收藏Figshare
Figshare是一个在线数据共享平台,允许研究人员上传和共享各种类型的研究成果,包括数据集、论文、图像、视频等。它旨在促进科学研究的开放性和可重复性。
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Global Firepower Index (GFI)
Global Firepower Index (GFI) 是一个评估全球各国军事力量的综合指数。该指数考虑了超过50个因素,包括军事预算、人口、陆地面积、海军力量、空军力量、自然资源、后勤能力、地理位置等。数据集提供了每个国家的详细评分和排名,帮助分析和比较各国的军事实力。
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全国兴趣点(POI)数据
POI(Point of Interest),即兴趣点,一个POI可以是餐厅、超市、景点、酒店、车站、停车场等。兴趣点通常包含四方面信息,分别为名称、类别、坐标、分类。其中,分类一般有一级分类和二级分类,每个分类都有相应的行业的代码和名称一一对应。 POI包含的信息及其衍生信息主要包含三个部分:
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Oxford 102 Flowers
牛津102花卉数据集是一个主要用于图像分类的花卉集合数据集,分为102个类别,共102种花卉,其中每个类别包含40到258幅图像。 该数据集由牛津大学工程科学系2008年在相关论文 “大量类别上的自动花分类” 中发布
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Data From NSCLC-Radiomics
This collection contains images from 422 non-small cell lung cancer (NSCLC) patients. For these patients pretreatment CT scans, manual delineation by a radiation oncologist of the 3D volume of the gross tumor volume and clinical outcome data are available. This dataset refers to the Lung1 dataset of the study published in Nature Communications. In short, this publication applies a radiomic approach to computed tomography data of 1,019 patients with lung or head-and-neck cancer. Radiomics refers to the comprehensive quantification of tumour phenotypes by applying a large number of quantitative image features. In present analysis 440 features quantifying tumour image intensity, shape and texture, were extracted. We found that a large number of radiomic features have prognostic power in independent data sets, many of which were not identified as significant before. Radiogenomics analysis revealed that a prognostic radiomic signature, capturing intra-tumour heterogeneity, was associated with underlying gene-expression patterns. These data suggest that radiomics identifies a general prognostic phenotype existing in both lung and head-and-neck cancer. This may have a clinical impact as imaging is routinely used in clinical practice, providing an unprecedented opportunity to improve decision-support in cancer treatment at low cost. The dataset described here (Lung1) was used to build a prognostic radiomic signature. The Lung3 dataset used to investigate the association of radiomic imaging features with gene-expression profiles consisting of 89 NSCLC CT scans with outcome data can be found here: NSCLC-Radiomics-Genomics. For scientific inquiries about this dataset, please contact Dr. Hugo Aerts of the Dana-Farber Cancer Institute / Harvard Medical School (hugo_aerts@dfci.harvard.edu). More Description
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