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3 Repos

Awesome GitHub RepositoriesDiffusion Model Memory Optimizers

Frameworks that reduce the memory footprint of diffusion models for inference on consumer hardware.

Distinct from Diffusion Weight Optimizers: Focuses on inference memory optimization and precision recovery rather than training weight optimization.

Explore 3 awesome GitHub repositories matching artificial intelligence & ml · Diffusion Model Memory Optimizers. Refine with filters or upvote what's useful.

Awesome Diffusion Model Memory Optimizers GitHub Repositories

Finde die besten Repos mit KI.Wir suchen mit KI nach den am besten passenden Repositories.
  • picsart-ai-research/text2video-zeroAvatar von Picsart-AI-Research

    Picsart-AI-Research/Text2Video-Zero

    4,244Auf GitHub ansehen↗

    Text2Video-Zero is a text-to-video diffusion model and framework designed to synthesize temporally consistent video sequences from textual prompts. It functions as a zero-shot video generator, repurposing pre-trained image diffusion models to create video content without requiring additional training on video datasets. The system includes a conditional video synthesizer that allows for guided generation using depth, edge, or pose maps to control structural layout and movement. It also provides text-based video editing capabilities to modify the style or content of existing video clips through

    Optimizes GPU memory usage during video generation to enable inference on consumer-grade hardware.

    Pythonvideo-editingvideo-generation
    Auf GitHub ansehen↗4,244
  • nunchaku-ai/nunchakuAvatar von nunchaku-ai

    nunchaku-ai/nunchaku

    3,883Auf GitHub ansehen↗

    Nunchaku is a 4-bit model quantization library and diffusion model inference engine designed to run large-scale neural networks on consumer GPUs. It functions as a GPU-accelerated optimizer that reduces VRAM usage and increases inference speed through weight compression and memory management. The project utilizes low-rank weight decomposition and SVD weight quantization to compress models to four-bit precision while maintaining visual fidelity. It employs kernel-level operator fusion to minimize data movement and hardware-aware precision mapping to adjust numerical precision based on the unde

    Provides a specialized inference engine for running large-scale diffusion models with reduced memory overhead on consumer GPUs.

    Pythoncomfyuidiffusion-modelsflux
    Auf GitHub ansehen↗3,883
  • city96/comfyui-ggufAvatar von city96

    city96/ComfyUI-GGUF

    3,291Auf GitHub ansehen↗

    ComfyUI-GGUF is a memory optimizer and model loader for ComfyUI that enables the execution of large transformer-based generative models using quantized weights. It provides a system for loading GGUF formatted weights within a node-based diffusion interface to reduce GPU memory consumption. The project includes a quantization tool for converting standard model checkpoints into compressed binary formats and a tensor fixer to restore missing keys and correct architectures in binary model files. These utilities ensure that compressed models remain functional during inference on hardware with limi

    Provides a framework for running large transformer-based generative models using quantized weights.

    Python
    Auf GitHub ansehen↗3,291
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