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Evaluation of Preprocessing Techniques for Brain Analysis Using Compressed and Uncompressed Magnetic Resonance Imaging

机译:使用压缩和未压缩磁共振成像的大脑分析预处理技术的评估

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Digital Image Processing (DIP) contributes with many advantages to medical diagnostics. Images can be optimized by improving their quality, which allows specialists to better locate tissue damages, or other anomalies. The planning and execution of surgeries, design of prosthesis, monitoring and evaluation of progression of diseases can greatly benefit from DIP. In particular, Magnetic Resonance Imaging (MRI) is a commonly used technique for medical diagnostics. It is highly accepted for its high precision and resolution in anatomical explorations, allowing an accurate analysis of interest area and the behavior of surrounding tissues. The image sequences captured in different three-dimensional (3D) planes by MRI analysis, allow specialists to determine better diagnoses and treatment for patients. However, the data loss caused by commonly used image compression formats could affect results, if the images are used without preprocessing techniques. This paper will evaluate differences between compressed and uncompressed images, proposing a methodology to improve the quality of compressed images recovering information by the uses of bi-linear and bi-cubic interpolations. The obtained results will be measured with Signal-Noise Ratio (SNR) and variance differences for each case to validate the preprocessing techniques applied. According to the obtained results, data lost by compression algorithms could be recovered by the proposed interpolations techniques.
机译:数字图像处理(DIP)在医学诊断方面具有许多优势。可以通过提高图像质量来优化图像,这可以使专家更好地定位组织损伤或其他异常情况。手术的计划和执行,假体的设计,疾病进展的监测和评估可以从DIP中受益匪浅。特别地,磁共振成像(MRI)是用于医学诊断的常用技术。它的高精确度和高分辨率在解剖学探索中被广泛接受,从而可以对感兴趣区域和周围组织的行为进行准确的分析。通过MRI分析在不同的三维(3D)平面中捕获的图像序列,使专家可以为患者确定更好的诊断和治疗方法。但是,如果使用的图像没有预处理技术,则由常用的图像压缩格式引起的数据丢失可能会影响结果。本文将评估压缩和未压缩图像之间的差异,提出一种通过使用双线性和双三次插值来提高压缩图像恢复信息质量的方法。将针对每种情况使用信噪比(SNR)和方差来测量获得的结果,以验证所应用的预处理技术。根据获得的结果,可以通过提出的插值技术来恢复压缩算法丢失的数据。

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