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Image Enhancement Algorithm Based on Depth Difference and Illumination Adjustment

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TLDR
In this paper, a traffic image enhancement model based on illumination adjustment and depth of field difference is proposed to improve the clarity and color fidelity of traffic images under the complex environment of haze and uneven illumination and promote road traffic safety monitoring.
Abstract
In order to improve the clarity and color fidelity of traffic images under the complex environment of haze and uneven illumination and promote road traffic safety monitoring, a traffic image enhancement model based on illumination adjustment and depth of field difference is proposed. The algorithm is based on Retinex theory, uses dark channel principle to obtain image depth of the field, and uses spectral clustering algorithm to cluster image depth. After the subimages are divided, the local haze concentration is estimated according to the depth of field and the subimages are adaptively enhanced and fused. In addition, the illumination component is obtained by multiscale guided filtering to maintain the edge characteristics of the image, and the uneven illumination problem is solved by adjusting the curve function. The experimental results show that the proposed model can effectively enhance the uneven illumination and haze weather image in the traffic scene and the visual effect of the images is good. The generated image has rich details, improves the quality of traffic images, and can meet the needs of traffic practical application.

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Journal ArticleDOI

An Ensembled Spatial Enhancement Method for Image Enhancement in Healthcare

TL;DR: In this article , an ensembled spatial method for image enhancement was proposed, which employed the Laplacian filter, which highlights the areas of fast intensity variation, and then the gradient of the image was determined, which utilizes the surrounding pixels for the weighted convolution operation for noise diminishing.
Journal ArticleDOI

Film Effect Optimization by Deep Learning and Virtual Reality Technology in New Media Environment

TL;DR: The quality and diversity of the specific types of images generated by the proposed GAN are improved compared with the current mainstream GAN method with supervision, which is in line with the subjective evaluation results of human beings.
Proceedings ArticleDOI

Image Enhancement using ESRGAN for CNN based X-Ray Classification

TL;DR: In this paper , a Super Resolution GAN (SRGAN) is used to super resolute the fine textures of the image by upscaling it and in order to enhance the images further, ESRGAN is used.
Proceedings ArticleDOI

Image Enhancement using ESRGAN for CNN based X-Ray Classification

TL;DR: In this article , a Super Resolution GAN (SRGAN) is used to super resolute the fine textures of the image by upscaling it and in order to enhance the images further, ESRGAN is used.

Brain tumor based mri image enhancement using entropy and clahe based intuitionistic fuzzy method with deep learning

TL;DR: In this paper , the authors presented an approach for the segmentation and classification of brain tumors using Entropy and CLAHE (Contrast Limited Adaptive Histogram Equalization) based Intuitionistic Fuzzy Method with Deep Learning.
References
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Journal ArticleDOI

Single image haze removal using integrated dark and bright channel prior

TL;DR: In this article, the dark channel prior (DCP) has been proven to be an adequate haze removal model, however, its procedure causes annoying halo and gradient reversal artifacts.
Journal ArticleDOI

Single Underwater Image Restoration Based on Depth Estimation and Transmission Compensation

TL;DR: An effective single underwater image restoration framework based on the depth estimation and the transmission compensation is developed and it was suggested that this new restoration algorithm outperformed many state-of-the-art methods both qualitatively and quantitatively.
Journal ArticleDOI

A Wavelet-Based Mammographic Image Denoising and Enhancement with Homomorphic Filtering

TL;DR: The preliminary results of the work indicate that this method provides much more visibility for the suspicious regions, and a proposed adaptive thresholding the fine details of the mammograms are retained and the noise is suppressed.
Journal ArticleDOI

An Improved OTSU Algorithm Using Histogram Accumulation Moment for Ore Segmentation

Yantong Zhan, +1 more
- 22 Mar 2019 - 
TL;DR: An ore image segmentation algorithm based on a histogram accumulation moment, which is applied to multi-scenario ore object location and recognition, and can segment mineral images with unimodal or insignificant bimodal characteristic histogram effectively and accurately is proposed.
Journal ArticleDOI

Fast Algorithm of Image Enhancement based on Multi-Scale Retinex

TL;DR: A fast image enhancement algorithm based on Multi-Scale Retinex in HSV color model using Haar wavelet transform with brightness correction by MSR only in the low-frequency area is presented, which allows to reduce image processing time on 30-75% depending on the image size.
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