Adds HSV Threshold Mask
actually update examples as well
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@@ -0,0 +1,61 @@
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import cv2
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import torch
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import numpy as np
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class HSVThresholdMask:
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def __init__(self):
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pass
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@classmethod
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def INPUT_TYPES(s):
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return {
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"required": {
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"image": ("IMAGE",),
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"low_threshold": ("FLOAT", {
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"default": 0.2,
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"min": 0,
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"max": 1,
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"step": 0.1
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}),
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"high_threshold": ("FLOAT", {
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"default": 0.7,
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"min": 0,
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"max": 1,
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"step": 0.1
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}),
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"hsv_channel": (["hue", "saturation", "value"],),
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},
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}
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RETURN_TYPES = ("IMAGE",)
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FUNCTION = "hsv_threshold"
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CATEGORY = "postprocessing/Masks"
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def hsv_threshold(self, image: torch.Tensor, low_threshold: float, high_threshold: float, hsv_channel: str):
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batch_size, height, width, _ = image.shape
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result = torch.zeros(batch_size, height, width)
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if hsv_channel == "hue":
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channel = 0
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low_threshold, high_threshold = int(low_threshold * 180), int(high_threshold * 180)
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elif hsv_channel == "saturation":
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channel = 1
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low_threshold, high_threshold = int(low_threshold * 255), int(high_threshold * 255)
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elif hsv_channel == "value":
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channel = 2
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low_threshold, high_threshold = int(low_threshold * 255), int(high_threshold * 255)
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for b in range(batch_size):
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tensor_image = (image[b].numpy().copy() * 255).astype(np.uint8)
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hsv_image = cv2.cvtColor(tensor_image, cv2.COLOR_RGB2HSV)
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mask = cv2.inRange(hsv_image[:, :, channel], low_threshold, high_threshold)
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tensor = torch.from_numpy(mask).float() / 255.
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result[b] = tensor
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return (result,)
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NODE_CLASS_MAPPINGS = {
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"HSVThresholdMask": HSVThresholdMask,
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}
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