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Medical Image Tamper Detection Based on Passive Image Authentication

机译:基于被动图像认证的医学图像篡改检测

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Abstract Telemedicine has gained popularity in recent years. Medical images can be transferred over the Internet to enable the telediagnosis between medical staffs and to make the patient’s history accessible to medical staff from anywhere. Therefore, integrity protection of the medical image is a serious concern due to the broadcast nature of the Internet. Some watermarking techniques are proposed to control the integrity of medical images. However, they require embedding of extra information (watermark) into image before transmission. It decreases visual quality of the medical image and can cause false diagnosis. The proposed method uses passive image authentication mechanism to detect the tampered regions on medical images. Structural texture information is obtained from the medical image by using local binary pattern rotation invariant (LBPROT) to make the keypoint extraction techniques more successful. Keypoints on the texture image are obtained with scale invariant feature transform (SIFT). Tampered regions are detected by the method by matching the keypoints. The method improves the keypoint-based passive image authentication mechanism (they do not detect tampering when the smooth region is used for covering an object) by using LBPROT before keypoint extraction because smooth regions also have texture information. Experimental results show that the method detects tampered regions on the medical images even if the forged image has undergone some attacks (Gaussian blurring/additive white Gaussian noise) or the forged regions are scaled/rotated before pasting.
机译:近年来,摘要远程医疗在近年来越来越受欢迎。医学图像可以通过互联网转移,以便在医务人员之间进行Telediagnosis,并使患者的历史能够从任何地方的医疗人员访问。因此,由于互联网的广播性质,医学形象的完整性保护是一种严重的关注。提出了一些水印技术来控制医学图像的完整性。但是,在传输之前,它们需要将额外信息(水印)嵌入图像中。它降低了医学图像的视觉质量,并可能导致错误诊断。所提出的方法使用被动图像认证机制来检测医学图像上的篡改区域。通过使用本地二进制模式旋转不变(LBPROT)来获得从医学图像获得的结构纹理信息,以使关键点提取技术更成功。使用缩放不变特征变换(SIFT)获得纹理图像上的关键点。通过匹配关键点来检测篡改区域。该方法改进了基于关键点的无源图像认证机制(当通过在Keypoint提取之前使用LBProt时,当平滑区域用于覆盖对象时,它们不会检测到篡改,因为平滑区域也具有纹理信息。实验结果表明,该方法即使伪造的图像经历了一些攻击(高斯模糊/添加剂白色高斯噪声)或锻造区域,也可以检测医学图像上的篡改区域。

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