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Automatic Vertebrae Recognition from Arbitrary Spine MRI Images by a Hierarchical Self-calibration Detection Framework

机译:通过分层自校准检测框架从任意脊柱MRI图像中自动识别椎骨

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Automatic vertebrae recognition is crucial in spine diseases diagnosis, treatment planning, and response assessment. Although vertebrae detection has been studied for years, reliably recognizing vertebrae from arbitrary spine MRI images remains a challenge due to varying image characteristics, field of view (FOV) as well as vertebrae appearance. In this paper, we propose a Hierarchical Self-calibration Detection Framework (Hi-scene) to precisely recognize the labels and bounding boxes of all vertebrae in an arbitrary spine MRI image. Hi-scene is designed to first coarsely localize regions where vertebrae exist without the need of a priori knowledge about the scale, image characteristics and FOV; then accurately recognize vertebrae and automatically correct wrong recognitions by an elaborated self-calibration recognition network that embeds message passing into deep learning network. The method is trained and evaluated on a capacious and challenging dataset of 450 MRI scans, and the evaluation results show that our Hi-scene achieves high performance (testing accuracy reaches 0.933) from arbitrary input spine MRI and outperforms other state-of-the-art methods.
机译:自动脊椎识别对于脊柱疾病的诊断,治疗计划和反应评估至关重要。尽管已经对椎骨检测进行了多年研究,但是由于图像特征,视野(FOV)和椎骨外观的变化,从任意脊柱MRI图像中可靠地识别椎骨仍然是一个挑战。在本文中,我们提出了一种分层自校准检测框架(Hi-scene),以精确识别任意脊柱MRI图像中所有椎骨的标签和边界框。 Hi-scene旨在首先粗略定位存在椎骨的区域,而无需先验的规模,图像特征和FOV知识;然后通过精心设计的自我校准识别网络将椎骨嵌入消息,并将其传递到深度学习网络中,从而准确识别椎骨并自动纠正错误识别。该方法在450个MRI扫描的庞大且具有挑战性的数据集上进行了培训和评估,评估结果表明,我们的Hi-scene通过任意输入的脊柱MRI可以实现高性能(测试精度达到0.933),并且胜过其他同类情况艺术方法。

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