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Embedded registration of visible and infrared images in real time for noninvasive skin cancer screening

机译:实时嵌入式可见和红外图像配准,用于无创皮肤癌筛查

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We present an embedded system architecture that implements real-time multimodal registration to enable dual-camera spatio-temporal feature extraction in a skin cancer screening application. We test the system on a combination of visible and long-wave infrared image sequences, but it can be easily extended to setups operating in different sections of the spectrum. Image registration is performed by matching common features between each frame of a visible image to each frame of an infrared image sequence to estimate a projective transformation between them. The parameters of this transformation are estimated recursively on line with the video, thus enabling image registration in real time. The algorithm is implemented using a combination of embedded software and dedicated hardware units on a heterogeneous reconfigurable system-on-a-chip. The hardware performs feature detection and extraction, while the software estimates the transformation parameters and maps each visible video frame onto the infrared image coordinates. implemented on an FPGA, our prototype runs at 540 frames per second with a 135 MHz clock, consumes 1.8 W and utilizes 29% and 54% of the logic and multiplier resources of the chip, respectively.
机译:我们提出了一种嵌入式系统体系结构,该体系结构实现实时多模式注册,以在皮肤癌筛查应用程序中启用双摄像头时空特征提取。我们在可见光和长波红外图像序列的组合上测试该系统,但可以轻松地将其扩展到在光谱的不同部分中运行的设置。通过将可见图像的每一帧与红外图像序列的每一帧之间的公共特征进行匹配以估计它们之间的投影变换,来执行图像配准。与视频一致地递归估计该变换的参数,从而实现实时图像配准。该算法是使用嵌入式软件和专用硬件单元的组合在异构可重配置片上系统上实现的。硬件执行特征检测和提取,而软件估计转换参数并将每个可见视频帧映射到红外图像坐标上。在FPGA上实现的我们的原型以135 MHz的时钟每秒540帧的速度运行,消耗1.8 W的功率,并分别利用了芯片逻辑和乘法器资源的29%和54%。

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