Lucy Richardson and Mean Modified Wiener Filter for Construction of Super-Resolution Image

IF 0.8 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC
Pravin Balaso Chopade, Prabhakar N. Kota, Bhagvat D. Jadhav, Pravin Marotrao Ghate, Shankar Dattatray Chavan
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引用次数: 0

Abstract

The ultimate goal of the Super-Resolution (SR) technique is to generate the High-Resolution (HR) image by combining the corresponding images with Low-Resolution (LR), which is utilized for different applications such as surveillance, remote sensing, medical diagnosis, etc. The original HR image may be corrupted due to various causes such as warping, blurring, and noise addition. SR image reconstruction methods are frequently plagued by obtrusive restorative artifacts such as noise, stair casing effect, and blurring. Thus, striking a balance between smoothness and edge retention is never easy. By enhancing the visual information and autonomous machine perception, this work presented research to improve the effectiveness of SR image reconstruction The reference image is obtained from DIV2K and BSD 100 dataset, these reference LR image is converted as composed LR image using the proposed Lucy Richardson and Modified Mean Wiener (LR-MMWF) Filters. The possessed LR image is provided as input for the stage of bicubic interpolation. Afterward, the initial HR image is obtained as output from the interpolation stage which is given as input for the SR model consisting of fidelity term to decrease residual between the projected HR image and detected LR image. At last, a model based on Bilateral Total Variation (BTV) prior is utilized to improve the stability of the HR image by refining the quality of the image. The results obtained from the performance analysis show that the proposed LR-MMW filter attained better PSNR and Structural Similarity (SSIM) than the existing filters. The results obtained from the experiments show that the proposed LR-MMW filter achieved better performance and provides a higher PSNR value of 31.65dB whereas the Filter-Net and 1D,2D CNN filter achieved PSNR values of 28.95dB and 31.63dB respectively.
Lucy Richardson和均值修正维纳滤波器在超分辨率图像构建中的应用
超分辨率(Super-Resolution, SR)技术的最终目标是将相应图像与低分辨率(Low-Resolution, LR)相结合,生成高分辨率(High-Resolution, HR)图像,用于监控、遥感、医疗诊断等不同应用。原始HR图像可能由于各种原因而损坏,例如扭曲,模糊和噪声添加。SR图像重建方法经常受到诸如噪声、阶梯效应和模糊等突发性修复伪影的困扰。因此,在平滑和边缘保持之间取得平衡从来都不是一件容易的事。从DIV2K和BSD 100数据集中获取参考图像,使用提出的Lucy Richardson和改进的均值维纳(LR- mmwf)滤波器将参考LR图像转换为合成LR图像。得到的LR图像作为双三次插值阶段的输入。然后,从插值阶段获得初始HR图像作为输出,将其作为SR模型的输入,该模型由保真度项组成,以减小投影HR图像与检测到的LR图像之间的残差。最后,利用基于双边总变差(BTV)先验的模型,通过对图像质量进行细化,提高HR图像的稳定性。性能分析结果表明,所提出的LR-MMW滤波器比现有滤波器具有更好的PSNR和结构相似度(SSIM)。实验结果表明,本文提出的LR-MMW滤波器性能更好,PSNR值为31.65dB,而filter - net和1D、2D CNN滤波器的PSNR值分别为28.95dB和31.63dB。
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来源期刊
CiteScore
1.20
自引率
11.80%
发文量
69
期刊介绍: The International Journal of Electrical and Computer Engineering Systems publishes original research in the form of full papers, case studies, reviews and surveys. It covers theory and application of electrical and computer engineering, synergy of computer systems and computational methods with electrical and electronic systems, as well as interdisciplinary research. Power systems Renewable electricity production Power electronics Electrical drives Industrial electronics Communication systems Advanced modulation techniques RFID devices and systems Signal and data processing Image processing Multimedia systems Microelectronics Instrumentation and measurement Control systems Robotics Modeling and simulation Modern computer architectures Computer networks Embedded systems High-performance computing Engineering education Parallel and distributed computer systems Human-computer systems Intelligent systems Multi-agent and holonic systems Real-time systems Software engineering Internet and web applications and systems Applications of computer systems in engineering and related disciplines Mathematical models of engineering systems Engineering management.
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