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| import torch | |
| class StubImage: | |
| def __init__(self): | |
| pass | |
| def INPUT_TYPES(cls): | |
| return { | |
| "required": { | |
| "content": (['WHITE', 'BLACK', 'NOISE'],), | |
| "height": ("INT", {"default": 512, "min": 1, "max": 1024 ** 3, "step": 1}), | |
| "width": ("INT", {"default": 512, "min": 1, "max": 4096 ** 3, "step": 1}), | |
| "batch_size": ("INT", {"default": 1, "min": 1, "max": 1024 ** 3, "step": 1}), | |
| }, | |
| } | |
| RETURN_TYPES = ("IMAGE",) | |
| FUNCTION = "stub_image" | |
| CATEGORY = "Testing/Stub Nodes" | |
| def stub_image(self, content, height, width, batch_size): | |
| if content == "WHITE": | |
| return (torch.ones(batch_size, height, width, 3),) | |
| elif content == "BLACK": | |
| return (torch.zeros(batch_size, height, width, 3),) | |
| elif content == "NOISE": | |
| return (torch.rand(batch_size, height, width, 3),) | |
| class StubConstantImage: | |
| def __init__(self): | |
| pass | |
| def INPUT_TYPES(cls): | |
| return { | |
| "required": { | |
| "value": ("FLOAT", {"default": 0.5, "min": 0.0, "max": 1.0, "step": 0.01}), | |
| "height": ("INT", {"default": 512, "min": 1, "max": 1024 ** 3, "step": 1}), | |
| "width": ("INT", {"default": 512, "min": 1, "max": 4096 ** 3, "step": 1}), | |
| "batch_size": ("INT", {"default": 1, "min": 1, "max": 1024 ** 3, "step": 1}), | |
| }, | |
| } | |
| RETURN_TYPES = ("IMAGE",) | |
| FUNCTION = "stub_constant_image" | |
| CATEGORY = "Testing/Stub Nodes" | |
| def stub_constant_image(self, value, height, width, batch_size): | |
| return (torch.ones(batch_size, height, width, 3) * value,) | |
| class StubMask: | |
| def __init__(self): | |
| pass | |
| def INPUT_TYPES(cls): | |
| return { | |
| "required": { | |
| "value": ("FLOAT", {"default": 0.5, "min": 0.0, "max": 1.0, "step": 0.01}), | |
| "height": ("INT", {"default": 512, "min": 1, "max": 1024 ** 3, "step": 1}), | |
| "width": ("INT", {"default": 512, "min": 1, "max": 4096 ** 3, "step": 1}), | |
| "batch_size": ("INT", {"default": 1, "min": 1, "max": 1024 ** 3, "step": 1}), | |
| }, | |
| } | |
| RETURN_TYPES = ("MASK",) | |
| FUNCTION = "stub_mask" | |
| CATEGORY = "Testing/Stub Nodes" | |
| def stub_mask(self, value, height, width, batch_size): | |
| return (torch.ones(batch_size, height, width) * value,) | |
| class StubInt: | |
| def __init__(self): | |
| pass | |
| def INPUT_TYPES(cls): | |
| return { | |
| "required": { | |
| "value": ("INT", {"default": 0, "min": -0xffffffff, "max": 0xffffffff, "step": 1}), | |
| }, | |
| } | |
| RETURN_TYPES = ("INT",) | |
| FUNCTION = "stub_int" | |
| CATEGORY = "Testing/Stub Nodes" | |
| def stub_int(self, value): | |
| return (value,) | |
| class StubFloat: | |
| def __init__(self): | |
| pass | |
| def INPUT_TYPES(cls): | |
| return { | |
| "required": { | |
| "value": ("FLOAT", {"default": 0.0, "min": -1.0e38, "max": 1.0e38, "step": 0.01}), | |
| }, | |
| } | |
| RETURN_TYPES = ("FLOAT",) | |
| FUNCTION = "stub_float" | |
| CATEGORY = "Testing/Stub Nodes" | |
| def stub_float(self, value): | |
| return (value,) | |
| TEST_STUB_NODE_CLASS_MAPPINGS = { | |
| "StubImage": StubImage, | |
| "StubConstantImage": StubConstantImage, | |
| "StubMask": StubMask, | |
| "StubInt": StubInt, | |
| "StubFloat": StubFloat, | |
| } | |
| TEST_STUB_NODE_DISPLAY_NAME_MAPPINGS = { | |
| "StubImage": "Stub Image", | |
| "StubConstantImage": "Stub Constant Image", | |
| "StubMask": "Stub Mask", | |
| "StubInt": "Stub Int", | |
| "StubFloat": "Stub Float", | |
| } | |