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Back to divamgupta/stable-diffusion-tensorflow

Open-source alternatives to Stable Diffusion Tensorflow

30 open-source projects similar to divamgupta/stable-diffusion-tensorflow, ranked by how many features they have in common. Compare stars, activity and what each one does to find the best Stable Diffusion Tensorflow alternative.

  • hlky/stable-diffusion-webuiالصورة الرمزية لـ hlky

    hlky/stable-diffusion-webui

    7,880عرض على GitHub↗

    Stable Diffusion Web UI is a browser-based interface for generating, editing, and upscaling images and videos using latent diffusion models. It functions as a text-to-image generator, an AI image editor, and a tool for increasing image resolution and clarity. The system includes capabilities for custom model training, specifically allowing the creation of textual inversion embeddings to teach a model new concepts and visual styles from user photos. It also provides tools for AI video production, generating short clips from text prompts. The software covers image-to-image transformation, imag

    Python
    عرض على GitHub↗7,880
  • lucidrains/imagen-pytorchالصورة الرمزية لـ lucidrains

    lucidrains/imagen-pytorch

    8,415عرض على GitHub↗

    This is a PyTorch-based implementation of diffusion models for synthesizing photorealistic images and video. It provides a framework for text-to-image and text-to-video generation, as well as unconditional image synthesis. The system utilizes a cascading diffusion pipeline to produce high-resolution imagery by passing low-resolution outputs through a sequence of super-resolution models. It also includes capabilities for image inpainting, allowing the reconstruction of masked or missing regions of visual media guided by surrounding context and text prompts. The project includes tools for diff

    Pythonartificial-intelligencedeep-learningimagination-machine
    عرض على GitHub↗8,415
  • kwai-kolors/kolorsالصورة الرمزية لـ Kwai-Kolors

    Kwai-Kolors/Kolors

    4,607عرض على GitHub↗

    Kolors is a generative model implementation for synthesizing photorealistic images from natural language descriptions and visual references. It utilizes a latent diffusion model framework to produce high-fidelity imagery, operating within a compressed latent space to improve generation efficiency and quality. The system functions as a multilingual image generator, interpreting text prompts in multiple languages to produce semantically accurate visual outputs. It includes a custom model training pipeline that uses low-rank adaptation to teach the model specific subjects or artistic styles from

    Python
    عرض على GitHub↗4,607

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  • timothybrooks/instruct-pix2pixالصورة الرمزية لـ timothybrooks

    timothybrooks/instruct-pix2pix

    6,879عرض على GitHub↗

    Instruct-pix2pix is an instruction-based image model and PyTorch library designed to modify visual content by following natural language directions. It functions as a diffusion model image editor that applies human-written instructions to existing pictures rather than using traditional text-to-image prompts. The project provides a fine-tunable diffusion framework for adapting pre-trained checkpoints to specific image editing datasets. It includes a synthetic dataset generator that creates paired images and text triplets to train models on various image editing tasks. The system covers a rang

    Python
    عرض على GitHub↗6,879
  • compvis/stable-diffusionالصورة الرمزية لـ CompVis

    CompVis/stable-diffusion

    73,125عرض على GitHub↗

    Stable Diffusion is a generative machine learning pipeline that synthesizes high-resolution visual content by performing iterative denoising within a compressed latent space. By mapping natural language embeddings into pixel outputs through conditioned probabilistic processes, the framework enables the generation of images from text prompts and the transformation of existing visual inputs based on semantic instructions. The architecture utilizes a modular execution environment that decouples model loading, scheduler logic, and inference components to support diverse hardware configurations. I

    Jupyter Notebook
    عرض على GitHub↗73,125
  • sygil-dev/sygil-webuiالصورة الرمزية لـ Sygil-Dev

    Sygil-Dev/sygil-webui

    7,879عرض على GitHub↗

    Sygil-webui is a web interface for Stable Diffusion latent diffusion models, providing a creative suite for text-to-image and text-to-video synthesis. It functions as an image generation tool and a latent diffusion image editor, allowing users to create visuals and video sequences from textual descriptions. The project includes a dedicated model training interface for creating custom textual inversion embeddings, which introduces specific new concepts or styles into the diffusion models. It also features specialized tools for generative image editing, including mask-based inpainting, image-to

    Python
    عرض على GitHub↗7,879
  • openai/glide-text2imالصورة الرمزية لـ openai

    openai/glide-text2im

    3,688عرض على GitHub↗

    GLIDE is a generative model designed for text-to-image synthesis, image editing, and the contextual filling of masked image regions. It uses a guided diffusion process to transform random noise into high-resolution imagery that aligns with descriptive text prompts. The system provides specialized capabilities for modifying existing visuals, including the ability to alter specific image elements and iteratively refine selected regions through text-driven guidance. It also functions as an inpainting tool, filling missing or masked sections of an image with new content that blends naturally with

    Python
    عرض على GitHub↗3,688
  • huggingface/diffusersالصورة الرمزية لـ huggingface

    huggingface/diffusers

    33,872عرض على GitHub↗

    Diffusers is a PyTorch-based library and generative AI framework used to build, train, and deploy diffusion pipelines for producing multi-modal media. It provides a suite of tools for generating images, video, and audio from natural language descriptions, as well as specialized systems for text-to-image generation. The project differentiates itself through a modular architecture that separates noise schedulers, pretrained model blocks, and pipeline compositions. This structure allows for the construction of custom generation workflows and the ability to swap individual components of the diffu

    Pythondeep-learningdiffusionflux
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  • open-mmlab/mmagicالصورة الرمزية لـ open-mmlab

    open-mmlab/mmagic

    7,434عرض على 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
    عرض على GitHub↗7,434
  • huggingface/diffusion-models-classالصورة الرمزية لـ huggingface

    huggingface/diffusion-models-class

    4,331عرض على GitHub↗

    This project is an educational course and collection of training materials focused on generative diffusion models. It provides a curriculum and practical guides for training, fine-tuning, and deploying models capable of synthesizing images, audio, and video. The material covers specific implementation strategies including noise-based synthesis, iterative refinement, and latent space compression. It provides instruction on guiding generative outputs through conditional synthesis and prompt adherence optimization, as well as techniques for image inpainting and text-based editing. The project i

    Jupyter Notebook
    عرض على GitHub↗4,331
  • luosiallen/latent-consistency-modelالصورة الرمزية لـ luosiallen

    luosiallen/latent-consistency-model

    4,616عرض على GitHub↗

    This project is a framework for training consistency models and performing diffusion model distillation. It functions as a few-step text-to-image generator and an image-to-image transformation tool designed to produce high-resolution visuals from text prompts or existing images. The system focuses on converting pre-trained diffusion models into consistency models to reduce the number of required inference steps. It enables the training of lightweight model adaptors to inject specific visual styles into large models without requiring full network fine-tuning. The project covers broad capabili

    Python
    عرض على GitHub↗4,616
  • compvis/latent-diffusionالصورة الرمزية لـ CompVis

    CompVis/latent-diffusion

    14,072عرض على GitHub↗

    Latent Diffusion is a framework for high-resolution image synthesis that performs the denoising process within a compressed latent space. It uses variational autoencoders to encode images into a lower-dimensional representation, reducing the computational cost of noise prediction compared to operating on raw pixels. The project enables text-to-image generation by integrating natural language descriptions through cross-attention conditioning. It also supports image inpainting and restoration, filling masked or missing image areas with generated content, and example-based synthesis using retrie

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  • tencent-hunyuan/hunyuanditالصورة الرمزية لـ Tencent-Hunyuan

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    4,292عرض على GitHub↗

    HunyuanDiT is a bilingual text-to-image generative model and diffusion transformer image generator. It uses a latent diffusion system to synthesize high-resolution images from text prompts, with a specific focus on understanding and generating content from both Chinese and English language descriptions. The project features a multi-resolution transformer architecture and a bilingual embedding space to map different scripts into a shared semantic area. It supports iterative multi-turn image refinement, which translates conversational dialogue into updated prompts to progressively modify visual

    Jupyter Notebook
    عرض على GitHub↗4,292
  • lucidrains/deep-dazeالصورة الرمزية لـ lucidrains

    lucidrains/deep-daze

    4,319عرض على GitHub↗

    Deep-daze is a neural image steerable generator and text-to-image synthesis tool. It functions as an image-to-image interpretation engine and an image generator that transforms text prompts and image seeds into visual representations. The system supports long-form text visualization by bypassing standard token limits to process extended narratives or poems. It also provides image-guided prompting, allowing the network to be initialized with a starting image before applying text steering. The framework employs neural network optimization and iterative gradient descent to refine image quality.

    Python
    عرض على GitHub↗4,319
  • stability-ai/stablecascadeالصورة الرمزية لـ Stability-AI

    Stability-AI/StableCascade

    6,548عرض على GitHub↗

    StableCascade is a generative AI system and latent diffusion framework designed for text-to-image synthesis and image-to-image transformations. It utilizes a multi-stage cascade architecture that encodes and decodes images via a latent space to produce high-fidelity visual imagery. The system includes a cascade diffusion pipeline for controlling image structure through inpainting, outpainting, and super-resolution. It also provides a toolkit for image-to-image generation and the creation of image variations using embeddings. The framework supports model optimization through low-rank adaptati

    Jupyter Notebook
    عرض على GitHub↗6,548
  • nvlabs/sanaالصورة الرمزية لـ NVlabs

    NVlabs/Sana

    8,310عرض على GitHub↗

    Sana is a framework for high-resolution image and video synthesis based on a linear diffusion transformer. It provides a toolkit for the training, fine-tuning, and execution of text-to-image and text-to-video models, as well as a video generative world model capable of simulating physical environments with precise spatial control. The project is distinguished by its use of linear complexity layers to handle high resolutions and its support for long-form, minute-length video generation in real time. It implements a two-stage inference paradigm that separates structural generation from visual t

    Python
    عرض على GitHub↗8,310
  • leejet/stable-diffusion.cppالصورة الرمزية لـ leejet

    leejet/stable-diffusion.cpp

    5,430عرض على GitHub↗

    stable-diffusion.cpp is a high-performance C++ inference engine designed for generating images and video from text prompts using Stable Diffusion models. It functions as a latent diffusion model runtime and a lightweight machine learning framework that enables local diffusion model execution on consumer hardware. The project distinguishes itself as a CPU-based image generator capable of running without a dedicated GPU. It employs a specialized C++ tensor backend and cross-backend hardware abstraction to dispatch compute tasks across different processor instruction sets and graphics APIs. The

    C++aicplusplusdiffusion
    عرض على GitHub↗5,430
  • acly/krita-ai-diffusionالصورة الرمزية لـ Acly

    Acly/krita-ai-diffusion

    9,755عرض على GitHub↗

    This project is a plugin for Krita that integrates Stable Diffusion image generation and editing tools directly into the painting interface. It functions as a remote diffusion backend client, bridging the digital canvas to local or remote servers to handle the computation required for AI image generation. The system distinguishes itself through a real-time painting interface that translates brushstrokes into generated imagery as the artist works. It acts as a structural orchestrator, using sketches, depth maps, and poses to maintain precise composition, and provides a generative inpainting to

    Pythongenerative-aikrita-pluginstable-diffusion
    عرض على GitHub↗9,755
  • abdbarho/stable-diffusion-webui-dockerالصورة الرمزية لـ AbdBarho

    AbdBarho/stable-diffusion-webui-docker

    7,315عرض على GitHub↗

    This project is a containerized deployment for running Stable Diffusion web interfaces. It provides a portable runtime for generative AI that manages dependencies and hardware acceleration to enable text-to-image generation and image-to-image transformations via a browser-based interface. The system uses hardware-specific image tags to support both GPU-accelerated synthesis and CPU-only execution. It ensures environment isolation across different operating systems while utilizing bind-mount data persistence to keep heavy model weights and generated outputs on the host machine. The deployment

    Shell
    عرض على GitHub↗7,315
  • deep-floyd/ifالصورة الرمزية لـ deep-floyd

    deep-floyd/IF

    7,811عرض على GitHub↗

    IF is a text-to-image diffusion system that translates natural language descriptions into visual imagery. The project provides a generative pipeline for creating images, an inpainting tool for modifying specific image sections, and a super-resolution upscaler to increase pixel density and clarity. The system includes a concept fine-tuning framework that allows for the teaching of new visual concepts by updating a small set of parameters. It also supports image style transfer to apply the aesthetic characteristics of a reference image to a new output.

    Python
    عرض على GitHub↗7,811
  • zai-org/cogvideoالصورة الرمزية لـ zai-org

    zai-org/CogVideo

    12,790عرض على GitHub↗

    CogVideo is a video generation framework and large language model architecture designed for synthesizing high-resolution video clips from natural language descriptions and images. It functions as a text-to-video and image-to-video generator, while also providing a model for video captioning to analyze visual content into descriptive text summaries. The system supports animating static images into motion sequences and transforming series of images into video based on prompts. It includes capabilities for extending the length of generated video clips to create longer sequences of motion. The f

    Pythoncogvideoximage-to-videollm
    عرض على GitHub↗12,790
  • hpcaitech/open-soraالصورة الرمزية لـ hpcaitech

    hpcaitech/Open-Sora

    29,101عرض على GitHub↗

    Open-Sora is a video generation framework designed to produce cinematic sequences from text prompts and images. It functions as a generative system that transforms written descriptions or reference images into video content featuring realistic textures and lighting. The project includes a dedicated prompt engineering tool that uses large language models to expand simple user inputs into detailed descriptions. It also features a motion controller for adjusting movement intensity in generated sequences and evaluating motion levels in existing video files. The framework incorporates text-to-vid

    Python
    عرض على GitHub↗29,101
  • comfyanonymous/comfyuiالصورة الرمزية لـ comfyanonymous

    comfyanonymous/ComfyUI

    117,322عرض على GitHub↗

    ComfyUI is a modular generative AI workflow orchestrator and node-based GUI for designing and executing complex diffusion model pipelines. It functions as both a visual interface for building generative logic graphs and a programmable backend API that exposes diffusion model operations for external integration. The system distinguishes itself through a graph-based execution model that supports differential workflow execution, re-running only modified nodes to reduce computation. It features dynamic model offloading to manage memory between system RAM and GPU VRAM and utilizes metadata-embedde

    Python
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  • lucidrains/dalle2-pytorchالصورة الرمزية لـ lucidrains

    lucidrains/DALLE2-pytorch

    11,310عرض على GitHub↗

    This is a PyTorch implementation of a text-to-image model designed for synthesizing high-fidelity images from natural language descriptions. It utilizes a diffusion image generator to transform latent embeddings into visual data through an iterative denoising process. The system employs a two-stage latent mapping process, using a CLIP-based latent prior to map text embeddings to image embeddings before decoding them into pixels. It features a cascading diffusion decoder that produces high-resolution imagery by passing low-resolution outputs through a sequence of models at increasing scales.

    Pythonartificial-intelligencedeep-learningtext-to-image
    عرض على GitHub↗11,310
  • ailab-cvc/videocrafterالصورة الرمزية لـ ailab-cvc

    ailab-cvc/videocrafter

    5,063عرض على GitHub↗

    Videocrafter is a latent diffusion model designed for AI video synthesis. It functions as both a text-to-video and image-to-video generation system, synthesizing high-quality video sequences from descriptive text prompts or static image inputs. The model utilizes a diffusion-based neural network to transform inputs into animated content, ensuring visual consistency and temporal coherence throughout the generated sequences. This allows for the creation of custom video clips and the animation of static images into fluid motion.

    Python
    عرض على GitHub↗5,063
  • cubiq/comfyui_ipadapter_plusالصورة الرمزية لـ cubiq

    cubiq/ComfyUI_IPAdapter_plus

    6,031عرض على GitHub↗

    ComfyUIIPAdapterplus is a node-based extension for ComfyUI that implements IPAdapter models to guide image generation using reference images. It functions as an image prompting tool and a Stable Diffusion image adapter, allowing reference files to serve as visual prompts for controlling style, composition, and subject identity. The project provides specialized capabilities for maintaining facial identity and high-fidelity features across generated portraits. It enables the transfer of visual characteristics and artistic styles from reference images, as well as the extraction of spatial layo

    Python
    عرض على GitHub↗6,031
  • lkwq007/stablediffusion-infinityالصورة الرمزية لـ lkwq007

    lkwq007/stablediffusion-infinity

    3,878عرض على GitHub↗

    stablediffusion-infinity is a browser-based generative image workspace and infinite canvas editor. It provides a non-destructive environment for expanding image boundaries and synthesizing content using latent diffusion models. The project enables generative image outpainting and inpainting, allowing users to extend image boundaries or fill masked regions. It utilizes an infinite coordinate system to manage large-scale compositions and maintain spatial relationships between original and generated image patches. The workspace employs patch-based inference and contextual blending to ensure vis

    Python
    عرض على GitHub↗3,878
  • camenduru/stable-diffusion-webui-colabالصورة الرمزية لـ camenduru

    camenduru/stable-diffusion-webui-colab

    15,937عرض على GitHub↗

    This project provides a cloud-based notebook configuration for deploying a Stable Diffusion web interface. It functions as a specialized environment for image generation, incorporating a model trainer for fine-tuning weights and creating training datasets. The system emphasizes infrastructure persistence by saving software installations and model files to cloud storage, avoiding repetitive setups between sessions. It uses a tunnel-based interface to expose the web dashboard to a public URL for remote interaction. The project covers end-to-end AI workflows, including dataset preparation and t

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    عرض على GitHub↗15,937
  • microsoft/taskmatrixالصورة الرمزية لـ microsoft

    microsoft/TaskMatrix

    34,079عرض على GitHub↗

    TaskMatrix is a visual language model orchestration framework and modular visual pipeline designed to coordinate disparate foundation models. It functions as a multi-model workflow coordinator that sequences visual and textual models through logic paths to handle image processing tasks without requiring additional training. The system integrates large language models with visual foundation models to enable the exchange of image data during interactive chat sessions. It utilizes template-based orchestration to chain specialized models together for complex visual tasks. The framework supports

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  • firebase/genkitالصورة الرمزية لـ firebase

    firebase/genkit

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    Genkit is an open-source framework for building AI-powered applications. It provides a unified interface for connecting to hundreds of generative AI models from multiple providers, enabling text, image, audio, and video generation through a single API. The framework structures multi-step AI interactions—including chat, retrieval-augmented generation, tool use, and agentic workflows—as composable, traceable flows with built-in streaming and state management. The framework distinguishes itself through a comprehensive developer toolkit that includes a command-line interface and a local developer

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