Content-based image retrieval on CT colonography using rotation and scale invariant features and bag-of-words model

Javed M. Aman, Jianhua Yao, R. Summers
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引用次数: 16

Abstract

We present a content-based image retrieval (CBIR) paradigm to enhance computed tomographic colonography computer-aided detection (CTCCAD). Our method uses scale-invariant feature transform (SIFT) features in conjunction with the bag-of-words model to describe and differentiate 3D images of CTCCAD detections. We evaluate the performance of our system using both digital colon phantoms and detections form CTCCAD. Our method shows promise in distinguishing common structures found within the colon.
基于旋转、尺度不变特征和词袋模型的CT结肠镜图像检索
我们提出了一种基于内容的图像检索(CBIR)范式来增强计算机断层结肠镜计算机辅助检测(CTCCAD)。我们的方法使用尺度不变特征变换(SIFT)特征结合词袋模型来描述和区分CTCCAD检测的三维图像。我们使用数字冒号幻影和CTCCAD检测来评估系统的性能。我们的方法有望区分结肠内常见的结构。
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