2021
DOI: 10.1038/s41597-021-01066-8
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CLiP, catheter and line position dataset

Abstract: Correct catheter position is crucial to ensuring appropriate function of the catheter and avoid complications. This paper describes a dataset consisting of 50,612 image level and 17,999 manually labelled annotations from 30,083 chest radiographs from the publicly available NIH ChestXRay14 dataset with manually annotated and segmented endotracheal tubes (ETT), nasoenteric tubes (NET) and central venous catheters (CVCs).

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Cited by 14 publications
(4 citation statements)
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“…To assess whether models can generalize across clinical distributions, we chose a wide variety of downstream CXR datasets that we used to finetune and validate our models. These datasets came from diverse sites, including Brazil 23 , China 24,25 , United States ,25,,26,27,28,29,30,31 , Spain 32 , Japan 33 , Vietnam 34 and other countries in Eastern Europe and Central Asia. 35 They also addressed a large set of tasks, such as lung nodule detection, line and tube placement, edema severity classification, pediatric pneumonia detection, pneumothorax detection and multi-class differential diagnosis; some datasets address wide-ranging detection tasks for multiple pathologies.…”
Section: Resultsmentioning
confidence: 99%
“…To assess whether models can generalize across clinical distributions, we chose a wide variety of downstream CXR datasets that we used to finetune and validate our models. These datasets came from diverse sites, including Brazil 23 , China 24,25 , United States ,25,,26,27,28,29,30,31 , Spain 32 , Japan 33 , Vietnam 34 and other countries in Eastern Europe and Central Asia. 35 They also addressed a large set of tasks, such as lung nodule detection, line and tube placement, edema severity classification, pediatric pneumonia detection, pneumothorax detection and multi-class differential diagnosis; some datasets address wide-ranging detection tasks for multiple pathologies.…”
Section: Resultsmentioning
confidence: 99%
“…In this study, a subset of the open-source dataset, namely CLiP, catheter, and line position dataset [96], was utilized. This dataset is alternatively available as a public catheter and line position challenge dataset.…”
Section: Datasetmentioning
confidence: 99%
“…We compare our PAX-Ray++ dataset against other datasets within and outside the CXR domain in Figure 1 c / d . This includes ChestXDet [49], a dataset with mask annotations for lung diseases, CLiP [50], a dataset with annotations for catheters and lines, our PAX-Ray, as well as the popular natural image datasets PASCAL VOC [51] and MSCOCO [52]. PASCAL VOC and MSCOCO are benchmark datasets that support the development of a wide range of computer vision algorithms.…”
Section: Properties Of Pax-ray++mentioning
confidence: 99%