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RECOLORED IMAGE DETECTIONRECOLORED IMAGE DETECTIONRECOLORED IMAGE DETECTION

Image recolouring is a technique that can transfer image Color or theme and result in an imperceptible change in human eyes. Although image re-Colouring is one of the most important image manipulation techniques, there is no special method designed for detecting this kind of forgery. In this paper, we propose a trainable end-to-end system for distinguishing recoloured images from natural images. The proposed network takes the original image and two derived inputs based on illumination consistency and inter-channel correlation of the original input into consideration and outputs the probability that it is recoloured. Our algorithm adopts a convolutional neural network (CNN)- based deep architecture, which consists of three feature extraction blocks and a feature fusion module. To train the deep neural network, we synthesize a data set comprised of recoloured images and corresponding ground truth using different recolouring methods. Extensive experimental results on the recoloured images generated by various methods show that our proposed network is well generalized and very robust.

SYSTEM REQUIREMENTS
SOFTWARE REQUIREMENTS:
• Programming Language : Python
• Font End Technologies : TKInter/Web(HTML,CSS,JS)
• IDE : Jupyter/Spyder/VS Code
• Operating System : Windows 08/10

HARDWARE REQUIREMENTS:

 Processor : Core I3
 RAM Capacity : 2 GB
 Hard Disk : 250 GB
 Monitor : 15″ Color
 Mouse : 2 or 3 Button Mouse
 Key Board : Windows 08/10

For More Details of Project Document, PPT, Screenshots and Full Code
Call/WhatsApp – 9966645624
Email – info@srithub.com

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