ELA 全称:Error Level Analysis ,汉译为“错误级别分析”或者叫“误差分析”。通过检测特定压缩比率重新绘制图像后造成的误差分布,可用于识别JPEG图像的压缩。
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Updated
Sep 22, 2017
ELA 全称:Error Level Analysis ,汉译为“错误级别分析”或者叫“误差分析”。通过检测特定压缩比率重新绘制图像后造成的误差分布,可用于识别JPEG图像的压缩。
This tool compares the original image to a recompressed version. This can make manipulated regions stand out in various ways. For example they can be darker or brighter than similar regions which have not been manipulated.
Classifies a given aadhaar image to real or fake by doing two levels of analysis.
Detects the authenticity of an image using Error Level Analysis and Convolutional Neural Networks.
Python implementation of the Error Level Analysis algorithm in scikit-image with a GUI made in TKinter
Classifies a given image as authentic or tampered by doing two levels of analysis. Implemented using PyTorch.
Separates real and fake images
Edited Images Analyser
A program for my undergraduate thesis in Computer Science, Universitas Pendidikan Indonesia (Indonesia University of Education).
Python CLI tool to visually detect photoshopped pictures using Error Level Analysis
Image Tampering Detection WebApp made with Flask
Image Forgery Detection using ELA and Deep Learning
Simple Tampered Image Detection using Error Level Analysis and Convolutional Neural Network with Flask
Academic group project undertaken as part of a class.
Image Tampering Detection using ELA and CNN
Image Forgery Detection using ELA and Deep Learning
Employing Error Level Analysis (ELA) and Edge Detection techniques, this project aims to identify potential image forgery by analyzing discrepancies in error levels and abrupt intensity changes within images.
Multi-feature Forgery Detection Deep-Learning based Framework
aim of this project is to give insight into authenticity of an image using ELA and metadata analysis based weather validation
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