National Neuro-Imaging Facility, National Brain Research Centre, Manesar, NCR Delhi 122-050, India.
Magn Reson Imaging. 2010 Nov;28(9):1361-73. doi: 10.1016/j.mri.2010.06.014. Epub 2010 Aug 24.
In general, low-field MRI scanners such as the 0.5- and 1-T ones produce images that are poor in quality. The motivation of this study was to lessen the noise and enhance the signal such that the image quality is improved. Here, we propose a new approach using stochastic resonance (SR)-based transform in Fourier space for the enhancement of magnetic resonance images of brain lesions, by utilizing an optimized level of Gaussian fluctuation that maximizes signal-to-noise ratio (SNR).
We acquired the T1-weighted MR image of the brain in DICOM format. We processed the original MR image using the proposed SR procedure. We then tested our approach on about 60 patients of different age groups with different lesions, such as arteriovenous malformation, benign lesion and malignant tumor, and illustrated the image enhancement by using just-noticeable difference visually as well as by utilizing the relative enhancement factor quantitatively.
Our method can restore the original image from noisy image and optimally enhance the edges or boundaries of the tissues, clarify indistinct structural brain lesions without producing ringing artifacts, as well as delineate the edematous area, active tumor zone, lesion heterogeneity or morphology, and vascular abnormality. The proposed technique improves the enhancement factor better than the conventional techniques like the Wiener- and wavelet-based procedures.
The proposed method can readily enhance the image fusing a unique constructive interaction of noise and signal, and enables improved diagnosis over conventional methods. The approach well illustrates the novel potential of using a small amount of Gaussian noise to improve the image quality.
一般来说,0.5T 和 1T 等低磁场磁共振成像扫描仪所生成的图像质量较差。本研究旨在降低噪声并增强信号,从而改善图像质量。在这里,我们提出了一种新的方法,即在傅立叶空间中使用基于随机共振(SR)的变换来增强脑病变的磁共振图像,通过利用最大化信噪比(SNR)的优化高斯波动水平。
我们以 DICOM 格式获取脑部 T1 加权磁共振图像。我们使用提出的 SR 程序处理原始 MR 图像。然后,我们在约 60 名不同年龄段、不同病变(如动静脉畸形、良性病变和恶性肿瘤)的患者中测试了我们的方法,并通过视觉上的刚好可察觉差异以及相对增强因子的定量测试来演示图像增强。
我们的方法可以从噪声图像中恢复原始图像,并最佳地增强组织的边缘或边界,在不产生振铃伪影的情况下使不明显的结构脑病变清晰化,还可以描绘出水肿区域、活跃肿瘤区域、病变异质性或形态以及血管异常。与传统技术(如 Wiener 和小波基方法)相比,所提出的技术可更好地提高增强因子。
所提出的方法可以通过噪声和信号的独特建设性相互作用来轻松增强图像,并可提高传统方法的诊断能力。该方法很好地说明了利用少量高斯噪声来提高图像质量的新颖潜力。