Download examples/flux2/model_inference_low_vram/TreeAdapter-KleinBase4B.py from ymyy307/diffsynth: direct link, hf CLI and curl.
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1.85 kB
| from diffsynth.diffusion.template import TemplatePipeline | |
| from diffsynth.pipelines.flux2_image import Flux2ImagePipeline, ModelConfig | |
| import torch | |
| vram_config = { | |
| "offload_dtype": "disk", | |
| "offload_device": "disk", | |
| "onload_dtype": torch.float8_e4m3fn, | |
| "onload_device": "cpu", | |
| "preparing_dtype": torch.float8_e4m3fn, | |
| "preparing_device": "cuda", | |
| "computation_dtype": torch.bfloat16, | |
| "computation_device": "cuda", | |
| } | |
| pipe = Flux2ImagePipeline.from_pretrained( | |
| torch_dtype=torch.bfloat16, | |
| device="cuda", | |
| model_configs=[ | |
| ModelConfig(model_id="black-forest-labs/FLUX.2-klein-base-4B", origin_file_pattern="transformer/*.safetensors", **vram_config), | |
| ModelConfig(model_id="black-forest-labs/FLUX.2-klein-4B", origin_file_pattern="text_encoder/*.safetensors", **vram_config), | |
| ModelConfig(model_id="black-forest-labs/FLUX.2-klein-4B", origin_file_pattern="vae/diffusion_pytorch_model.safetensors"), | |
| ], | |
| tokenizer_config=ModelConfig(model_id="black-forest-labs/FLUX.2-klein-4B", origin_file_pattern="tokenizer/"), | |
| vram_limit=0, | |
| ) | |
| pipe.dit = pipe.enable_lora_hot_loading(pipe.dit) # Important! | |
| template = TemplatePipeline.from_pretrained( | |
| torch_dtype=torch.bfloat16, | |
| device="cuda", | |
| model_configs=[ModelConfig(model_id="DiffSynth-Studio/TreeAdapter-KleinBase4B", origin_file_pattern="iNaturalist/")], | |
| lazy_loading=True, | |
| ) | |
| name = "Glareola pratincola" | |
| prompt = "A small bird with a long tail and short wings stands on sandy ground. Its plumage is light brown above, white below, with a dark collar around its neck. The background is a blurred expanse of sand." | |
| image = template( | |
| pipe, | |
| seed=0, cfg_scale=4, num_inference_steps=40, | |
| template_inputs = [{"name": name, "prompt": prompt}], | |
| negative_template_inputs = [{"name": name}], | |
| ) | |
| image.save("image.jpg") | |