Add image generation tests
rename
@ -496,7 +496,6 @@ with different prompts and LoRA adapters active.
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### ✅ TODO
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- [ ] Establish unit test suite
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- [ ] LoRA fine-tuning
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- [ ] Frontend support (Gradio/Streamlit/Other?)
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@ -25,6 +25,12 @@ dependencies = [
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"tqdm>=4.66.5,<5.0",
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"transformers>=4.44.0,<5.0",
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]
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[project.optional-dependencies]
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dev = [
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"pytest>=8.0.0,<9.0"
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]
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classifiers = [
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"Intended Audience :: Developers",
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"Operating System :: MacOS",
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@ -93,3 +99,8 @@ docstring-code-format = false
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# This only has an effect when the `docstring-code-format` setting is
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# enabled.
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docstring-code-line-length = "dynamic"
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[tool.pytest.ini_options]
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testpaths = ["tests"]
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python_files = "test_*.py"
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addopts = "-v"
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0
tests/__init__.py
Normal file
0
tests/helpers/__init__.py
Normal file
63
tests/helpers/image_generation_controlnet_test_helper.py
Normal file
@ -0,0 +1,63 @@
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import os
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import numpy as np
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from PIL import Image
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from mflux import ModelConfig, Flux1Controlnet, ConfigControlnet
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from tests.helpers.image_generation_test_helper import ImageGeneratorTestHelper
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class ImageGeneratorControlnetTestHelper:
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@staticmethod
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def assert_matches_reference_image(
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reference_image_path: str,
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output_image_path: str,
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controlnet_image_path: str,
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model_config: ModelConfig,
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prompt: str,
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steps: int,
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seed: int,
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controlnet_strength: float,
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lora_paths: list[str] | None = None,
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lora_scales: list[float] | None = None,
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):
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# resolve paths
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reference_image_path = ImageGeneratorTestHelper.resolve_path(reference_image_path)
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output_image_path = ImageGeneratorTestHelper.resolve_path(output_image_path)
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controlnet_image_path = str(ImageGeneratorTestHelper.resolve_path(controlnet_image_path))
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lora_paths = [str(ImageGeneratorTestHelper.resolve_path(p)) for p in lora_paths] if lora_paths else None
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# given
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flux = Flux1Controlnet(
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model_config=model_config,
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quantize=8,
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lora_paths=lora_paths,
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lora_scales=lora_scales,
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)
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# when
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image = flux.generate_image(
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seed=seed,
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prompt=prompt,
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output=str(output_image_path),
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controlnet_image_path=controlnet_image_path,
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controlnet_save_canny=False,
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config=ConfigControlnet(
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num_inference_steps=steps,
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height=768,
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width=493,
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controlnet_strength=controlnet_strength,
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),
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)
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image.save(path=output_image_path)
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# then
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np.testing.assert_array_equal(
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np.array(Image.open(output_image_path)),
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np.array(Image.open(reference_image_path)),
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err_msg="Generated image doesn't match reference image",
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)
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# cleanup
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if os.path.exists(output_image_path):
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os.remove(output_image_path)
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60
tests/helpers/image_generation_test_helper.py
Normal file
@ -0,0 +1,60 @@
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import os
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from pathlib import Path
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import numpy as np
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from PIL import Image
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from mflux import Flux1, Config, ModelConfig
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class ImageGeneratorTestHelper:
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@staticmethod
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def assert_matches_reference_image(
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reference_image_path: str,
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output_image_path: str,
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model_config: ModelConfig,
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prompt: str,
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steps: int,
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seed: int,
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lora_paths: list[str] | None = None,
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lora_scales: list[float] | None = None,
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):
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# resolve paths
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reference_image_path = ImageGeneratorTestHelper.resolve_path(reference_image_path)
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output_image_path = ImageGeneratorTestHelper.resolve_path(output_image_path)
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lora_paths = [str(ImageGeneratorTestHelper.resolve_path(p)) for p in lora_paths] if lora_paths else None
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# given
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flux = Flux1(
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model_config=model_config,
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quantize=8,
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lora_paths=lora_paths,
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lora_scales=lora_scales
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) # fmt: off
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# when
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image = flux.generate_image(
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seed=seed,
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prompt=prompt,
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config=Config(
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num_inference_steps=steps,
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height=341,
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width=768,
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),
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)
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image.save(path=output_image_path)
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# then
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np.testing.assert_array_equal(
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np.array(Image.open(output_image_path)),
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np.array(Image.open(reference_image_path)),
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err_msg="Generated image doesn't match reference image",
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)
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# cleanup
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if os.path.exists(output_image_path):
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os.remove(output_image_path)
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@staticmethod
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def resolve_path(path) -> Path:
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return Path(__file__).parent.parent / "resources" / path
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BIN
tests/resources/FLUX-dev-lora-MiaoKa-Yarn-World.safetensors
Normal file
BIN
tests/resources/controlnet_reference.png
Normal file
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After Width: | Height: | Size: 1.2 MiB |
BIN
tests/resources/reference_controlnet_dev.png
Normal file
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After Width: | Height: | Size: 416 KiB |
BIN
tests/resources/reference_controlnet_dev_lora.png
Normal file
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After Width: | Height: | Size: 483 KiB |
BIN
tests/resources/reference_controlnet_schnell.png
Normal file
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After Width: | Height: | Size: 273 KiB |
BIN
tests/resources/reference_dev.png
Normal file
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After Width: | Height: | Size: 367 KiB |
BIN
tests/resources/reference_dev_lora.png
Normal file
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After Width: | Height: | Size: 374 KiB |
BIN
tests/resources/reference_schnell.png
Normal file
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After Width: | Height: | Size: 392 KiB |
38
tests/test_generate_image.py
Normal file
@ -0,0 +1,38 @@
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from mflux import ModelConfig
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from tests.helpers.image_generation_test_helper import ImageGeneratorTestHelper
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class TestImageGenerator:
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OUTPUT_IMAGE_FILENAME = "output.png"
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def test_image_generation_schnell(self):
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ImageGeneratorTestHelper.assert_matches_reference_image(
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reference_image_path="reference_schnell.png",
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output_image_path=TestImageGenerator.OUTPUT_IMAGE_FILENAME,
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model_config=ModelConfig.FLUX1_SCHNELL,
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steps=2,
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seed=42,
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prompt="Luxury food photograph",
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)
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def test_image_generation_dev(self):
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ImageGeneratorTestHelper.assert_matches_reference_image(
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reference_image_path="reference_dev.png",
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output_image_path=TestImageGenerator.OUTPUT_IMAGE_FILENAME,
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model_config=ModelConfig.FLUX1_DEV,
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steps=15,
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seed=42,
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prompt="Luxury food photograph",
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)
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def test_image_generation_dev_lora(self):
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ImageGeneratorTestHelper.assert_matches_reference_image(
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reference_image_path="reference_dev_lora.png",
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output_image_path=TestImageGenerator.OUTPUT_IMAGE_FILENAME,
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model_config=ModelConfig.FLUX1_DEV,
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steps=15,
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seed=42,
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prompt="mkym this is made of wool, burger",
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lora_paths=["FLUX-dev-lora-MiaoKa-Yarn-World.safetensors"],
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lora_scales=[1.0],
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)
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45
tests/test_generate_image_controlnet.py
Normal file
@ -0,0 +1,45 @@
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from mflux import ModelConfig
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from tests.helpers.image_generation_controlnet_test_helper import ImageGeneratorControlnetTestHelper
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class TestImageGeneratorControlnet:
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OUTPUT_IMAGE_FILENAME = "output.png"
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CONTROLNET_REFERENCE_FILENAME = "controlnet_reference.png"
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def test_image_generation_schnell_controlnet(self):
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ImageGeneratorControlnetTestHelper.assert_matches_reference_image(
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reference_image_path="reference_controlnet_schnell.png",
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output_image_path=TestImageGeneratorControlnet.OUTPUT_IMAGE_FILENAME,
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controlnet_image_path=TestImageGeneratorControlnet.CONTROLNET_REFERENCE_FILENAME,
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model_config=ModelConfig.FLUX1_SCHNELL,
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steps=2,
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seed=43,
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prompt="The joker with a hat and a cane",
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controlnet_strength=0.4,
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)
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def test_image_generation_dev_controlnet(self):
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ImageGeneratorControlnetTestHelper.assert_matches_reference_image(
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reference_image_path="reference_controlnet_dev.png",
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output_image_path=TestImageGeneratorControlnet.OUTPUT_IMAGE_FILENAME,
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controlnet_image_path=TestImageGeneratorControlnet.CONTROLNET_REFERENCE_FILENAME,
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model_config=ModelConfig.FLUX1_DEV,
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steps=15,
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seed=42,
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prompt="The joker with a hat and a cane",
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controlnet_strength=0.4,
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)
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def test_image_generation_dev_lora_controlnet(self):
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ImageGeneratorControlnetTestHelper.assert_matches_reference_image(
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reference_image_path="reference_controlnet_dev_lora.png",
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output_image_path=TestImageGeneratorControlnet.OUTPUT_IMAGE_FILENAME,
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controlnet_image_path=TestImageGeneratorControlnet.CONTROLNET_REFERENCE_FILENAME,
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model_config=ModelConfig.FLUX1_DEV,
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steps=15,
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seed=43,
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prompt="mkym this is made of wool, The joker with a hat and a cane",
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lora_paths=["FLUX-dev-lora-MiaoKa-Yarn-World.safetensors"],
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lora_scales=[1.0],
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controlnet_strength=0.4,
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)
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@ -1,39 +0,0 @@
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#!/bin/zsh -e
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# ^ safe to assume Mac devs have zsh installed
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# default since Catalina in 2019
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mkdir -p /tmp/mflux-test
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mflux-generate \
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--prompt "Luxury food photograph" \
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--model schnell \
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--steps 2 \
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--seed 2 \
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--height 512 \
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--width 512 \
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--output /tmp/mflux-test/luxury_food.png
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# generate an image of a blue bird, then use it as input for the following test
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mflux-generate \
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--prompt "blue bird, morning, spring" \
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--model schnell \
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--steps 2 \
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--seed 24 \
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--height 512 \
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--width 512 \
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--stepwise-image-output-dir /tmp/mflux-test \
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--output /tmp/mflux-test/sf_blue_bird.png
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# use the image from the prior test, generate an image with similar visual structure
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mflux-generate-controlnet \
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--prompt "yellow bird, afternoon, snowy mountain" \
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--model schnell \
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--controlnet-image-path /tmp/mflux-test/sf_blue_bird.png \
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--controlnet-strength 0.7 \
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--controlnet-save-canny \
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--steps 2 \
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--seed 42 \
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--height 512 \
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--width 512 \
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--output /tmp/mflux-test/controlnet_sf_yellow_bird.png \
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--stepwise-image-output-dir /tmp/mflux-test
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