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add e2e test for T2I-Adapter XL canny
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@ -16,6 +16,7 @@ from refiners.foundationals.latent_diffusion import (
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SD1IPAdapter,
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SD1T2IAdapter,
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SDXLIPAdapter,
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SDXLT2IAdapter,
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)
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from refiners.foundationals.latent_diffusion.lora import SD1LoraAdapter
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from refiners.foundationals.latent_diffusion.multi_diffusion import DiffusionTarget
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@ -129,6 +130,7 @@ def controlnet_data_depth(ref_path: Path, test_weights_path: Path) -> tuple[str,
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weights_path = test_weights_path / "controlnet" / "lllyasviel_control_v11f1p_sd15_depth.safetensors"
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return cn_name, condition_image, expected_image, weights_path
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@pytest.fixture(scope="module")
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def t2i_adapter_data_depth(ref_path: Path, test_weights_path: Path) -> tuple[str, Image.Image, Image.Image, Path]:
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name = "depth"
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@ -138,6 +140,15 @@ def t2i_adapter_data_depth(ref_path: Path, test_weights_path: Path) -> tuple[str
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return name, condition_image, expected_image, weights_path
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@pytest.fixture(scope="module")
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def t2i_adapter_xl_data_canny(ref_path: Path, test_weights_path: Path) -> tuple[str, Image.Image, Image.Image, Path]:
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name = "canny"
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condition_image = Image.open(ref_path / f"fairy_guide_{name}.png").convert("RGB")
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expected_image = Image.open(ref_path / f"expected_t2i_adapter_xl_{name}.png").convert("RGB")
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weights_path = test_weights_path / "T2I-Adapter" / "t2i-adapter-canny-sdxl-1.0.safetensors"
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return name, condition_image, expected_image, weights_path
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@pytest.fixture(scope="module")
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def lora_data_pokemon(ref_path: Path, test_weights_path: Path) -> tuple[Image.Image, Path]:
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expected_image = Image.open(ref_path / "expected_lora_pokemon.png").convert("RGB")
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@ -1283,3 +1294,52 @@ def test_t2i_adapter_depth(
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predicted_image = sd15.lda.decode_latents(x)
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ensure_similar_images(predicted_image, expected_image)
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@torch.no_grad()
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def test_t2i_adapter_xl_canny(
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sdxl_ddim: StableDiffusion_XL,
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t2i_adapter_xl_data_canny: tuple[str, Image.Image, Image.Image, Path],
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test_device: torch.device,
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):
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sdxl = sdxl_ddim
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n_steps = 30
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name, condition_image, expected_image, weights_path = t2i_adapter_xl_data_canny
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if not weights_path.is_file():
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warn(f"could not find weights at {weights_path}, skipping")
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pytest.skip(allow_module_level=True)
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prompt = "Mystical fairy in real, magic, 4k picture, high quality"
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negative_prompt = (
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"extra digit, fewer digits, cropped, worst quality, low quality, glitch, deformed, mutated, ugly, disfigured"
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)
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clip_text_embedding, pooled_text_embedding = sdxl.compute_clip_text_embedding(
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text=prompt, negative_text=negative_prompt
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)
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time_ids = sdxl.default_time_ids
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sdxl.set_num_inference_steps(n_steps)
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t2i_adapter = SDXLT2IAdapter(target=sdxl.unet, name=name, weights=load_from_safetensors(weights_path)).inject()
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t2i_adapter.set_scale(0.8)
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condition = image_to_tensor(condition_image.convert("RGB"), device=test_device)
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t2i_adapter.set_condition_features(features=t2i_adapter.compute_condition_features(condition))
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manual_seed(2)
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x = torch.randn(1, 4, condition_image.height // 8, condition_image.width // 8, device=test_device)
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for step in sdxl.steps:
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x = sdxl(
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x,
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step=step,
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clip_text_embedding=clip_text_embedding,
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pooled_text_embedding=pooled_text_embedding,
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time_ids=time_ids,
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condition_scale=7.5,
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)
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predicted_image = sdxl.lda.decode_latents(x)
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ensure_similar_images(predicted_image, expected_image)
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@ -35,7 +35,12 @@ output.images[0].save("std_random_init_expected.png")
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Special cases:
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- `expected_refonly.png` has been generated [with Stable Diffusion web UI](https://github.com/AUTOMATIC1111/stable-diffusion-webui).
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- `expected_inpainting_refonly.png`, `expected_image_ip_adapter_woman.png`, `expected_image_sdxl_ip_adapter_woman.png` and `expected_ip_adapter_controlnet.png` have been generated with refiners itself (and inspected so that they look reasonable).
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- The following references have been generated with refiners itself (and inspected so that they look reasonable):
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- `expected_inpainting_refonly.png`,
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- `expected_image_ip_adapter_woman.png`,
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- `expected_image_sdxl_ip_adapter_woman.png`
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- `expected_ip_adapter_controlnet.png`
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- `expected_t2i_adapter_xl_canny.png`
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## Other images
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@ -45,13 +50,15 @@ Special cases:
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- `kitchen_mask.png` is made manually.
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- Controlnet guides have been manually generated using open source software and models, namely:
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- Controlnet guides have been manually generated (x) using open source software and models, namely:
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- Canny: opencv-python
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- Depth: https://github.com/isl-org/ZoeDepth
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- Lineart: https://github.com/lllyasviel/ControlNet-v1-1-nightly/tree/main/annotator/lineart
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- Normals: https://github.com/baegwangbin/surface_normal_uncertainty/tree/fe2b9f1
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- SAM: https://huggingface.co/spaces/mfidabel/controlnet-segment-anything
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(x): excepted `fairy_guide_canny.png` which comes from [TencentARC/t2i-adapter-canny-sdxl-1.0](https://huggingface.co/TencentARC/t2i-adapter-canny-sdxl-1.0)
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- `cyberpunk_guide.png` [comes from Lexica](https://lexica.art/prompt/5ba40855-0d0c-4322-8722-51115985f573).
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- `inpainting-mask.png`, `inpainting-scene.png` and `inpainting-target.png` have been generated as follows:
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BIN
tests/e2e/test_diffusion_ref/expected_t2i_adapter_xl_canny.png
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BIN
tests/e2e/test_diffusion_ref/expected_t2i_adapter_xl_canny.png
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Binary file not shown.
After Width: | Height: | Size: 1.8 MiB |
BIN
tests/e2e/test_diffusion_ref/fairy_guide_canny.png
Normal file
BIN
tests/e2e/test_diffusion_ref/fairy_guide_canny.png
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Binary file not shown.
After Width: | Height: | Size: 149 KiB |
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