ml-gmpi VS Text2LIVE

Compare ml-gmpi vs Text2LIVE and see what are their differences.

Text2LIVE

Official Pytorch Implementation for "Text2LIVE: Text-Driven Layered Image and Video Editing" (ECCV 2022 Oral) (by omerbt)
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ml-gmpi Text2LIVE
4 2
335 849
0.6% -
2.6 0.0
2 months ago about 1 year ago
Python Python
GNU General Public License v3.0 or later MIT License
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ml-gmpi

Posts with mentions or reviews of ml-gmpi. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2022-09-07.

Text2LIVE

Posts with mentions or reviews of Text2LIVE. We have used some of these posts to build our list of alternatives and similar projects.
  • The new neural network from NVIDIA can apply special effects to video using simple text commands.
    1 project | /r/callabacloud | 31 Jan 2023
    The source code of the neural network can be found on GitHub: https://github.com/omerbt/Text2LIVE
  • Text2LIVE: Text-Driven Layered Image and Video Editing. A new zero shot technique to edit the appearances of images and video!
    1 project | /r/StableDiffusion | 19 Oct 2022
    "We present a method for zero-shot, text-driven appearance manipulation in natural images and videos. Specifically, given an input image or video and a target text prompt, our goal is to edit the appearance of existing objects (e.g., object's texture) or augment the scene with new visual effects (e.g., smoke, fire) in a semantically meaningful manner. Our framework trains a generator using an internal dataset of training examples, extracted from a single input (image or video and target text prompt), while leveraging an external pre-trained CLIP model to establish our losses. Rather than directly generating the edited output, our key idea is to generate an edit layer (color+opacity) that is composited over the original input. This allows us to constrain the generation process and maintain high fidelity to the original input via novel text-driven losses that are applied directly to the edit layer. Our method neither relies on a pre-trained generator nor requires user-provided edit masks. Thus, it can perform localized, semantic edits on high-resolution natural images and videos across a variety of objects and scenes.   Semi-Transparent Effects Text2LIVE successfully augments the input scene with complex semi-transparent effects without changing irrelevant content in the image." demo site: https://text2live.github.io arxiv: https://arxiv.org/abs/2204.02491 github: https://github.com/omerbt/Text2LIVE

What are some alternatives?

When comparing ml-gmpi and Text2LIVE you can also consider the following projects:

text2mesh - 3D mesh stylization driven by a text input in PyTorch

Paint-by-Sketch - Stable Diffusion-based image manipulation method with a sketch and reference image

text2voxels - Generate 3D voxels from text with AI

SDEdit - PyTorch implementation for SDEdit: Image Synthesis and Editing with Stochastic Differential Equations

eg3d

DeepSIM - Official PyTorch implementation of the paper: "DeepSIM: Image Shape Manipulation from a Single Augmented Training Sample" (ICCV 2021 Oral)

Clip-Forge

TargetCLIP - [ECCV 2022] Official PyTorch implementation of the paper Image-Based CLIP-Guided Essence Transfer.

rome - Realistic mesh-based avatars. ECCV 2022

autodistill-metaclip - MetaCLIP module for use with Autodistill.

DeepFaceLive - Real-time face swap for PC streaming or video calls

sketchedit - SketchEdit: Mask-Free Local Image Manipulation with Partial Sketches, CVPR2022