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Assessment of speckle denoising in ultrasound carotid images using least square Bayesian estimation approach

机译:使用最小二乘贝叶斯估计方法评估超声颈动脉图像中的斑点去噪

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The ultrasound carotid images affected by speckle noise, which highly reduces the image quality and effects the human interpretation. Speckle removal is substantial and critical step for preprocessing of ultrasound carotid images. For robust diagnosis, the carotid images must be free of noise and clear in clinical practices. The carotid ultrasound images have multiplicative noise and is very difficult to remove as compared to additive noise. To address this issue we propose to use Bayesian least square estimation in the logarithmic space. The proposed algorithm is tested on 50 ultrasound B mode carotid images and the performance of the algorithm is compared with the existing algorithms like Median filter, Speckle Reducing Anisotropic Diffusion(SRAD), Non Local Mean (NLM) filter, Total Variation (TV), Detail Preserving Anisotropic Diffusion(DPAD) filter, Lee filter, Frost filter and Wavelet filter. Experimental result shows that proposed algorithm capable of achieving better results as compared to the other methods in terms of signal to noise ratio (SNR), peak signal to noise ratio (PSNR), Correlation of Coefficient (CoC), Structural Similarity Index Map (SSIM) and Image Quality Index(IQI) measures. As per visual inspection concerned the proposed approach is more effective in terms of suppression of noise and image enhancement.
机译:超声颈动脉图像受到斑点噪声的影响,从而极大地降低了图像质量并影响了人类的解释能力。斑点去除对于超声颈动脉图像的预处理是至关重要的关键步骤。为了进行可靠的诊断,颈动脉图像必须无噪音并且在临床实践中清晰可见。颈动脉超声图像具有乘法噪声,与加性噪声相比,很难去除。为了解决这个问题,我们建议在对数空间中使用贝叶斯最小二乘估计。该算法在50张超声B型颈动脉图像上进行了测试,并将其性能与现有算法进行了比较,例如中值滤波器,散斑减少各向异性扩散(SRAD),非局部均值(NLM)滤波器,总变化(TV),保留细节的各向异性扩散(DPAD)滤镜,Lee滤镜,Frost滤镜和小波滤镜。实验结果表明,该算法在信噪比(SNR),峰值信噪比(PSNR),系数相关性(CoC),结构相似性索引图(SSIM)方面均能比其他方法取得更好的效果。 )和图像质量指数(IQI)度量。根据目视检查,所提出的方法在抑制噪声和增强图像方面更为有效。

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