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Back to nvlabs/imaginaire

Projects sharing features with Imaginaire

30 open-source projects similar to nvlabs/imaginaire, ranked by shared indexed features. Tags may describe platforms or build tools rather than the same primary purpose. Check each project’s use case, license, and deployment requirements before treating it as a replacement.

  • yunjey/starganyunjey avatar

    yunjey/stargan

    5,292View on GitHub↗

    StarGAN is a PyTorch image-to-image translation framework designed to synthesize visual styles and attributes across multiple domains. It implements a generative adversarial network that serves as a deep learning image translator for modifying specific visual characteristics within an image dataset. The framework uses a single unified model to handle translations between multiple image domains rather than requiring separate pairs of models. It is a research implementation that learns mappings between different image attributes without the need for paired training data. The project covers the

    Python
    View on GitHub↗5,292
  • taki0112/ugatittaki0112 avatar

    taki0112/UGATIT

    6,117View on GitHub↗

    UGATIT is an unsupervised generative adversarial network and image-to-image translation model implemented in TensorFlow. It serves as the official research implementation of an ICLR 2020 paper, providing a framework for converting images between different visual styles without requiring paired training examples. The system utilizes an unsupervised generative attentional network and attention maps to deform geometric shapes and modify textures during the translation process. It employs a cycle-consistent framework to ensure translation quality by requiring images to return to their original st

    Python
    View on GitHub↗6,117
  • phillipi/pix2pixphillipi avatar

    phillipi/pix2pix

    10,644View on GitHub↗

    pix2pix is a framework for image-to-image translation using conditional generative adversarial networks. It functions as a supervised trainer and visual domain mapper designed to learn a mapping between input and output images for style and domain transfer. The system utilizes a U-Net encoder-decoder architecture combined with a PatchGAN local discriminator to enforce high-frequency local consistency. It employs L1 loss regularization to ensure generated outputs remain structurally close to the ground truth. The project covers a broad range of computer vision capabilities, including semantic

    Lua
    View on GitHub↗10,644

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  • junyanz/cycleganjunyanz avatar

    junyanz/CycleGAN

    12,861View on GitHub↗

    CycleGAN is a generative adversarial network framework designed for unpaired image-to-image translation. It enables the conversion of images between two distinct visual domains using datasets that do not require direct one-to-one matching examples. The project implements a deep learning style transfer tool capable of artistic style transfer, object transfiguration, and domain-to-domain conversion. It uses a dual-generator architecture and cycle-consistency loss to ensure that images translated to a target domain and back recover their original state. The framework covers core machine learnin

    Lua
    View on GitHub↗12,861
  • paddlepaddle/paddleganPaddlePaddle avatar

    PaddlePaddle/PaddleGAN

    8,043View on GitHub↗

    PaddleGAN is a generative AI framework and deep learning computer vision library built on the PaddlePaddle framework. It serves as a toolkit for image and video synthesis, providing a collection of generative adversarial network implementations for creating synthetic visual content. The library focuses on advanced synthesis capabilities, including the generation of talking heads through lip motion synchronization and the creation of synthetic videos via motion transfer from driving sequences. It provides tools for domain-to-domain translation, allowing for image style transfer and the transfo

    Pythonanimeganv2basicvsrpluspluscyclegan
    View on GitHub↗8,043
  • junyanz/pytorch-cyclegan-and-pix2pixjunyanz avatar

    junyanz/pytorch-CycleGAN-and-pix2pix

    24,951View on GitHub↗

    This project is a deep learning framework designed for training and deploying image-to-image translation models. It serves as a research platform for experimenting with neural network architectures that transform visual content between distinct stylistic domains, supporting both paired and unpaired training data. The framework distinguishes itself through its support for cycle-consistency constraints, which allow for image translation between domains without requiring corresponding paired examples. It provides a structured pipeline that utilizes adversarial loss optimization, where generator

    Pythoncomputer-graphicscomputer-visioncyclegan
    View on GitHub↗24,951
  • eriklindernoren/keras-ganeriklindernoren avatar

    eriklindernoren/Keras-GAN

    9,206View on GitHub↗

    Keras-GAN is a collection of generative adversarial network implementations built with Keras for synthetic data generation and image manipulation. It provides frameworks for image-to-image translation, image inpainting, and neural image super-resolution. The library includes tools for learning disentangled latent space representations to control specific attributes of synthetic outputs. It also features capabilities for image domain translation using paired or unpaired data and the ability to fill corrupted or missing image parts by analyzing surrounding visual context. The project covers ge

    Python
    View on GitHub↗9,206
  • minivision-ai/photo2cartoonminivision-ai avatar

    minivision-ai/photo2cartoon

    4,027View on GitHub↗

    photo2cartoon is a vision-based software tool and training framework designed to convert real human portrait photographs into stylized cartoon images. It utilizes generative adversarial networks to translate images from a real-world domain to a cartoon style. The project includes a training framework for these models that supports paired-data supervision and multi-GPU distributed training. It employs identity-preserving loss functions to ensure that the resulting cartoon outputs retain the original facial features of the subject. The system incorporates a full preprocessing pipeline that han

    Pythonavatar-generatorcartooncomputer-vision
    View on GitHub↗4,027
  • openai/gpt-2openai avatar

    openai/gpt-2

    24,967View on GitHub↗

    This project is a transformer-based language model and autoregressive text generator designed to predict the next token in a sequence to produce human-like prose and synthetic text. It functions as a large language model that utilizes a transformer architecture to learn linguistic patterns from large datasets for unsupervised multitask learning. The repository provides a distribution of pre-trained weights, enabling natural language processing tasks without requiring additional training. This allows the model to perform zero-shot task generalization by applying learned patterns to new tasks.

    Python
    View on GitHub↗24,967
  • sanster/iopaintSanster avatar

    Sanster/IOPaint

    23,244View on GitHub↗

    IOPaint is an AI image editor and Stable Diffusion inpainting tool providing a web interface for removing objects and replacing image content. It utilizes latent diffusion image processing to synthesize high-resolution replacements for erased sections of an image. The project features a specialized AI background remover for isolating subjects and an AI image upscaler that employs super-resolution models for general photos and anime artwork. The software covers a broad range of capabilities including image segmentation for object isolation, face restoration for improving facial details, and t

    Pythoninpaintinglamalatent-diffusion
    View on GitHub↗23,244
  • cchen156/learning-to-see-in-the-darkcchen156 avatar

    cchen156/Learning-to-See-in-the-Dark

    5,562View on GitHub↗

    This project is a deep learning computer vision implementation focused on low-light image restoration. It uses a neural network to process raw sensor data, mapping underexposed images to well-exposed versions to improve visibility and restore natural colors. The implementation is based on CVPR 2018 research and utilizes TensorFlow to execute the computational graph. It employs a convolutional neural network and pixel-wise regression to reconstruct scene lighting directly from unprocessed raw image data. The project includes a framework for supervised pair learning, where models are trained u

    Python
    View on GitHub↗5,562
  • facebookresearch/habitat-simfacebookresearch avatar

    facebookresearch/habitat-sim

    3,532View on GitHub↗

    Habitat-sim is a high-performance 3D simulation platform designed for training and benchmarking embodied AI agents within photorealistic indoor and outdoor environments. It serves as a simulator for AI and robotics, providing a system for generating synthetic data and simulating physical interactions. The project is distinguished by a native C++ core that enables high-throughput simulation and a rendering pipeline using physically based rendering and baked global illumination. It features a navigation system based on pre-computed navigation meshes to ensure collision-free traversal and a rigi

    C++aicomputer-visioncplusplus
    View on GitHub↗3,532
  • facebookresearch/flow_matchingfacebookresearch avatar

    facebookresearch/flow_matching

    4,562View on GitHub↗

    This project is a PyTorch-based generative model framework designed to transform noise into complex data distributions by learning vector fields and probability paths. It serves as a multimodal generative toolkit for producing synthetic text and images through learned probability flows. The library distinguishes itself by supporting continuous, discrete, and Riemannian manifold integrations. This allows the framework to handle a variety of data types, including categorical data via discrete-state flow matching and non-Euclidean spaces through Riemannian manifold integration. The toolkit cove

    Python
    View on GitHub↗4,562
  • apple/ml-mgieapple avatar

    apple/ml-mgie

    3,876View on GitHub↗

    ml-mgie is a multimodal machine learning framework and image editor designed for instruction-based image manipulation. It utilizes multimodal large language models to translate natural language prompts into precise visual modifications, functioning as a text-to-image editing model. The system is a research implementation focused on aligning visual imagination with textual commands. It employs a training process based on image-pair datasets and descriptive instructions to learn how to execute complex visual edits. The framework covers capabilities in AI-powered visual content creation, includ

    Python
    View on GitHub↗3,876
  • brunosimon/my-room-in-3dbrunosimon avatar

    brunosimon/my-room-in-3d

    4,429View on GitHub↗

    This project is a web-based 3D experience and interactive gallery designed as a personal portfolio. It uses a virtual room simulation to create a spatial representation of a physical environment where users can navigate and explore digital art and creative work. The environment is rendered directly in the browser as an interactive 3D gallery, allowing users to engage with a spatial showcase through first-person navigation. The project utilizes WebGL-based GPU rendering and custom shader-based lighting to display complex spatial environments. It incorporates asynchronous asset loading and an

    JavaScript
    View on GitHub↗4,429
  • cs231n/cs231n.github.iocs231n avatar

    cs231n/cs231n.github.io

    10,923View on GitHub↗

    This project is a static educational website and comprehensive curriculum focused on computer vision and deep learning. It serves as a public repository of instructional materials, lecture notes, and technical guides specifically detailing convolutional neural networks and visual recognition. The site is developed using static-site generation to host course documentation and student project directories. It provides structured academic resources that guide learners through image classification, generative modeling, and the implementation of various neural network architectures. The curriculum

    Jupyter Notebook
    View on GitHub↗10,923
  • cssanimation/css-animation-101cssanimation avatar

    cssanimation/css-animation-101

    5,062View on GitHub↗

    This project is a comprehensive CSS animation tutorial and a structured frontend animation course. It serves as a web motion learning resource designed to teach the implementation of visual transitions and animations within a browser. The resource provides a guide to CSS 3D animation, covering the rendering of three-dimensional scenes and depth. It includes instructions on motion design, ranging from scroll-triggered animations and sprite sheet animation to the creation of complex web interface animations. The material covers core capabilities such as manipulating element geometry, controlli

    CSSanimationcssebook
    View on GitHub↗5,062
  • facebookresearch/ditfacebookresearch avatar

    facebookresearch/DiT

    8,642View on GitHub↗

    DiT is a latent diffusion model and transformer-based generative AI framework implemented in PyTorch. It functions as a class-conditional image generator that replaces traditional convolutional backbones with a transformer architecture to synthesize high-fidelity images. The project utilizes patch-based latent processing and latent space compression to operate on low-dimensional image representations. It incorporates class-conditional guidance and adjustable guidance scales to control the visual content of generated images during the sampling process. The framework covers distributed model t

    Python
    View on GitHub↗8,642
  • id-software/quake-2id-Software avatar

    id-Software/Quake-2

    3,197View on GitHub↗

    Quake-2 is a game engine designed for the development of first-person shooters and the rendering of three-dimensional environments. It provides the core framework for processing real-time physics and player input within interactive 3D spaces. The engine supports software extensibility, allowing for the direct modification of source code to change gameplay mechanics and engine behaviors. This makes it a resource for retro game engineering and the study of early 3D development techniques. Its technical capabilities include vertex-based software rendering, BSP-tree spatial partitioning, and PVS

    C
    View on GitHub↗3,197
  • open-mmlab/mmagicopen-mmlab avatar

    open-mmlab/mmagic

    7,434View on GitHub↗

    mmagic is a multimodal training pipeline and framework for generative AI, focusing on visual synthesis and restoration. It provides the infrastructure to build and train models for tasks such as text-to-image and text-to-video generation, 3D-aware content synthesis, and high-fidelity image translation using diffusion models and generative adversarial networks. The project distinguishes itself through specialized capabilities for generative model personalization, including techniques for fine-tuning subjects and styles. It also supports advanced visual manipulations such as latent space interp

    Jupyter Notebookaigccomputer-visiondeep-learning
    View on GitHub↗7,434
  • openai/gpt-3openai avatar

    openai/gpt-3

    15,740View on GitHub↗

    This project is a large language model and general purpose natural language processing engine designed for text generation and linguistic analysis. It functions as a few-shot learning framework capable of solving diverse reasoning and language tasks using a small number of provided examples without requiring additional training. The system specializes in generating human-like synthetic text and long-form content, including news articles. It also provides capabilities for automated text reasoning to solve logic and arithmetic problems through direct interaction. The project includes tools for

    View on GitHub↗15,740
  • tensorpack/tensorpacktensorpack avatar

    tensorpack/tensorpack

    6,287View on GitHub↗

    Tensorpack is a high-level TensorFlow neural network framework and research library designed for building and training deep learning models. It provides a collection of reproducible neural network architectures for computer vision, generative tasks, reinforcement learning, and natural language processing. The project distinguishes itself through a specialized deep learning data pipeline that uses pure Python for parallel data loading and streaming. It includes a multi-GPU training orchestrator for distributing workloads via data-parallel strategies and a dedicated interpretability toolkit for

    Python
    View on GitHub↗6,287
  • tingsongyu/pytorch_tutorialTingsongYu avatar

    TingsongYu/PyTorch_Tutorial

    8,018View on GitHub↗

    This project is a comprehensive collection of educational examples and reference implementations for building vision and language models using PyTorch. It serves as a deep learning tutorial covering the end-to-end process of developing neural networks, from initial architecture definition to final production deployment. The repository provides detailed guides on implementing a wide range of domain-specific models, including convolutional neural networks for object detection and segmentation, as well as transformer and recurrent architectures for natural language processing. It emphasizes gene

    Python
    View on GitHub↗8,018
  • jolibrain/joligenjolibrain avatar

    jolibrain/joliGEN

    282View on GitHub↗

    Generative AI Image and Video Toolset with GANs and Diffusion for Real-World Applications

    Python
    View on GitHub↗282
  • croteam-official/serious-engineCroteam-official avatar

    Croteam-official/Serious-Engine

    3,165View on GitHub↗

    Serious Engine is an open-source framework designed for the development and execution of first-person shooter titles. It provides an integrated environment for rendering complex three-dimensional combat spaces and managing the core gameplay logic required for high-speed action sequences. The engine utilizes an entity-component-system architecture to manage game objects, supported by script-driven logic that allows for gameplay modifications without requiring engine recompilation. It distinguishes itself through a specialized rendering pipeline that separates geometry calculations from lightin

    C++
    View on GitHub↗3,165
  • nillerusr/source-enginenillerusr avatar

    nillerusr/source-engine

    2,128View on GitHub↗

    Source Engine is a cross-platform game engine designed for the development and execution of interactive three-dimensional applications. It provides a framework for rendering complex environments and managing multiplayer networking, functioning as a middleware solution for hosting independent game servers. The engine distinguishes itself through a client-server authoritative networking model that enables direct player connectivity without reliance on external authentication or matchmaking services. It utilizes a data-driven asset pipeline and a component-based entity system to decouple engine

    C++cross-platformgame-enginehalf-life2
    View on GitHub↗2,128
  • sillytavern/sillytavernSillyTavern avatar

    SillyTavern/SillyTavern

    29,463View on GitHub↗

    SillyTavern is a comprehensive interface and orchestration platform designed for immersive AI roleplay and interactive chat experiences. It functions as a unified gateway that connects users to a wide array of local and cloud-based large language models, providing a centralized environment to manage complex character personas, narrative context, and model-driven interactions. The platform distinguishes itself through its advanced prompt engineering and automation capabilities. It utilizes a sophisticated macro-based templating engine and vector-database retrieval to dynamically inject lore, c

    JavaScriptaichatllm
    View on GitHub↗29,463
  • pytorch/visionpytorch avatar

    pytorch/vision

    17,743View on GitHub↗

    This project is a comprehensive computer vision library for the PyTorch ecosystem, providing a standardized collection of neural network architectures, datasets, and high-performance transformation utilities. It serves as a foundational framework for building, training, and deploying deep learning models, offering a centralized model registry that allows developers to instantiate architectures with pre-trained weights for tasks such as image classification, object detection, and semantic segmentation. The library distinguishes itself through its modular approach to data and compute management

    Pythoncomputer-visionmachine-learning
    View on GitHub↗17,743
  • nirdiamant/genai_agentsNirDiamant avatar

    NirDiamant/GenAI_Agents

    20,047View on GitHub↗

    GenAI_Agents is a development framework and orchestration engine designed for building autonomous, multi-agent systems. It provides the infrastructure to construct complex, state-managed workflows where specialized agents collaborate to execute multi-step tasks, manage long-term memory, and perform iterative reasoning. The platform distinguishes itself through its graph-based orchestration model, which allows developers to define intricate agentic processes with explicit state transitions. It supports advanced control mechanisms such as human-in-the-loop intervention for manual oversight and

    Jupyter Notebookagentsaigenai
    View on GitHub↗20,047
  • justinpinkney/data-efficient-gansjustinpinkney avatar

    justinpinkney/data-efficient-gans

    11View on GitHub↗

    Generated using only 100 images of Obama, grumpy cats, pandas, the Bridge of Sighs, the Medici Fountain, the Temple of Heaven, without pre-training.

    Python
    View on GitHub↗11