DragGAN: AI tool that can kill Photoshop [Explained]

Check out the details about DragGAN in detail

DragGAN

It’s no secret that Adobe Photoshop is, and has been for many years, the gold standard of photo editing software. Its sophisticated powers and comprehensive set of tools have made it a favourite among experts and amateurs alike. It’s worth noting that despite Photoshop’s popularity, it hasn’t enjoyed a monopoly on the photo-editing software industry. Over the years, several alternative software programs have emerged that offer the same capabilities. They have gained significant popularity, such as Snapseed, Affinity, GIMP, and others, but Photoshop is Photoshop. Those software’s we mentioned earlier simply eased the process and started becoming famous.

With the advancement of AI technology, there is indeed a possibility that software like Photoshop will be influenced. In fact, AI-powered tools and features have already started to make their way into photo editing software. One example of AI integration in photo editing is the use of machine learning algorithms for automated image enhancements. AI algorithms can analyze images, identify objects and scenes, and make intelligent adjustments to improve overall quality, which can include automatic colour correction, noise reduction, image sharpening, and other enhancements. These AI-driven features aim to simplify the editing process and provide users with quick results. IF you do the same tasks in Photoshop, it would takes a descent amount of time to do those. Additionally, AI has been utilised in areas such as object removal, background replacement, and intelligent selection tools.

One such breakthrough is DragGAN, a remarkable AI tool developed by the Max Planck Institute. With DragGAN, users can now manipulate photographs with unprecedented realism and control.

What is DragGAN?

DragGAN, a new AI tool from the Max Planck Institute, lets people realistically edit photos. To understand DragGAN, it’s important to have a basic understanding of Generative Adversarial Networks (GANs) since DragGAN is a specific application of GANs.

Generative Adversarial Networks (GANs) are machine learning models with two neural networks, a generator and a discriminator. GANs create new data instances that match a training dataset. The discriminator network learns to identify actual data from produced data, while the generator network uses random noise to generate synthetic data that resembles the training data. GANs have been used to generate images, texts, videos, and more. They have been used to create realistic visuals, develop new artwork, and enhance data for other machine learning models. If you want to see the working of GAN, I would suggest you to go for the website called “This Person Does Not Exist“. It is a website uses a generative adversarial network (GAN) to create realistic images of non-existent people.

Source: Research gate

DragGAN, it is a variation of GANs that focuses on manipulation of images. DragGAN allows users to drag points in a picture to their chosen target places interactively.

Feature-Based Motion Supervision: How DragGAN Works? 

DragGAN’s capabilities are built around feature-based motion supervision. This component gives users precise control over the editing process by allowing them to drag points in an image to their intended target locations interactively. This means that, rather than depending exclusively on automated algorithms, people can actively participate in the editing process by modifying specific points in the image.

The capacity to obtain fine-grained control over numerous features inside the shot is a benefit of feature-based motion supervision. Users can quickly change the image to obtain their desired result, whether it’s shifting the position of an object, changing the composition, or changing the appearance of certain sections. This level of control allows users to participate in the editing process as co-creators, resulting in more personalised and fulfilling results. Check out the image below to see how it works.

 

Revolutionary Point-Tracking Technique

DragGAN uses a novel point-tracking technology to assure the quality and uniformity of the editing process. Throughout the editing session, the program tracks and monitors the handle points as they are dragged and adjusted. DragGAN preserves the image’s integrity and ensures that the adjustments are executed effortlessly by accurately following the handle points.

This approach has the potential to create a more user-friendly and intuitive editing experience by allowing users to alter specific points in the image interactively and see real-time adjustments. DragGAN’s point-tracking technology most likely permits exact mapping of the user’s modifications to the appropriate locations in the image.

Benefits and Applications

DragGAN has various advantages and applications for both professional and amateur photographers. The following are some major benefits of using DragGAN:

1. Realistic Photo Manipulation: Using DragGAN’s superior AI capabilities, users may realistically edit images, flawlessly integrating changes with the original image.

2. Precise Control: The feature-based motion supervision allows users to precisely move handle points, providing them complete control over the editing process.

3. Interactive and Intuitive:  DragGAN’s drag-and-drop interface, combined with real-time feedback, provides a dynamic and intuitive editing experience, allowing users to explore and enhance their adjustments.

4. Versatility: DragGAN can be used for a variety of editing activities, including item positioning, composition tweaks, and localized upgrades, to meet a variety of creative requirements.

DragGAN AI: How to Use

DragGAN AI’s website is still under construction, and the application is not yet available for download or use. It is still in the research and development phase. However there is a research paper published out here describing their work before releasing the actual software or application. The development also has a GitHub profile. Check it out here.  We’ll keep posted about any new updates in the long run. Follow our website to keep track on it.


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