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  4. Patch-Based Near-Optimal Image Denoising - 2012
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Category: MTech DIP Projects
By MTech Projects
MTech Projects
27.Sep
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Patch-Based Near-Optimal Image Denoising - 2012

PROJECT TITLE :

Patch-Based Near-Optimal Image Denoising - 2012

ABSTRACT:

In this paper, we propose a denoising method motivated by our previous analysis of the performance bounds for image denoising. Insights from that study are used here to derive a high-performance practical denoising algorithm. We propose a patch-based Wiener filter that exploits patch redundancy for image denoising. Our framework uses both geometrically and photometrically similar patches to estimate the different filter parameters. We describe how these parameters can be accurately estimated directly from the input noisy image. Our denoising approach, designed for near-optimal performance (in the mean-squared error sense), has a sound statistical foundation that is analyzed in detail. The performance of our approach is experimentally verified on a variety of images and noise levels. The results presented here demonstrate that our proposed method is on par or exceeding the current state of the art, both visually and quantitatively.

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  • Joint Adaptive Regularization and Thresholding on Manifolds for Depth Restoration from RGB-D Data
  • Prioritized Cascade Search and Fast One-Many RANSAC for On-Device Scalable Image-Based Localization
  • Block Based Robust Blind Image Watermarking Using Discrete Wavelet Transform - 2014
  • Multi-Instance Learning and the Extreme Value Theorem are used to classify volumetric images.
  • Inner and Inter Label Propagation: Salient Object Detection in the Wild - 2015
  • Color Correction Using Root-Polynomial Regression - 2015
  • Toward a Unified Color Space for Perception-Based Image Processing - 2012
  • Radiologists' performance in breast cancer screening is improved by deep neural networks.
  • Automatic hookworm detection in wireless capsule endoscopy images - 2016
  • Encoding mode selection in HEVC with the use of noise reduction - 2017
Previous article: Nonparametric Bayesian Dictionary Learning for Analysis of Noisy and Incomplete Images - 2012 Nonparametric Bayesian Dictionary Learning for Analysis of Noisy and Incomplete Images - 2012 Next article: Performance Analysis of a Block-Neighborhood-Based Self-Recovery Fragile Watermarking Scheme - 2012 Performance Analysis of a Block-Neighborhood-Based Self-Recovery Fragile Watermarking Scheme - 2012
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