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Author SHA1 Message Date
Joseph Parker 3b64c4ac5a Experiments with inpainging 2024-10-20 14:25:46 +01:00
+70 -33
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@@ -73,6 +73,31 @@ class DrawThingsTxt2Img:
return (torch.stack(images),)
def image_to_base64_with_alpha(image_tensor):
# Check if the image tensor has an alpha channel
has_alpha = image_tensor.shape[-1] == 4
# Convert the image tensor to a NumPy array and scale it to the range 0-255
i = 255. * image_tensor.cpu().numpy()
img = Image.fromarray(np.clip(i, 0, 255).astype(np.uint8))
# Ensure the image is in RGBA format if it has an alpha channel
if has_alpha:
print("has_alpha")
img = img.convert("RGBA")
else:
print("no_alpha")
img = img.convert("RGB")
# Save the image to a BytesIO object (in memory) rather than to a file
buffered = BytesIO()
img.save(buffered, format="PNG")
# Encode the image as base64
encoded_string = base64.b64encode(buffered.getvalue()).decode('utf-8')
return encoded_string
def image_to_base64(image_tensor):
# Convert the image tensor to a NumPy array and scale it to the range 0-255
i = 255. * image_tensor.cpu().numpy()
@@ -86,11 +111,25 @@ def image_to_base64(image_tensor):
encoded_string = base64.b64encode(buffered.getvalue()).decode('utf-8')
return encoded_string
def mask_to_base64(mask_tensor):
# Convert the image tensor to a NumPy array and scale it to the range 0-255
i = 255. * mask_tensor.squeeze(0).cpu().numpy()
img = Image.fromarray(np.clip(i, 0, 255).astype(np.uint8), mode='L')
# Save the image to a BytesIO object (in memory) rather than to a file
buffered = BytesIO()
img.save(buffered, format="PNG")
# Encode the image as base64
encoded_string = base64.b64encode(buffered.getvalue()).decode('utf-8')
return encoded_string
def resize_for_inpainting(pixels, mask=None):
print(type(pixels))
x = (pixels.shape[1] // 64) * 64
y = (pixels.shape[2] // 64) * 64
#mask = torch.nn.functional.interpolate(mask.reshape((-1, 1, mask.shape[-2], mask.shape[-1])), size=(pixels.shape[1], pixels.shape[2]), mode="bilinear")
if mask != None:
mask = torch.nn.functional.interpolate(mask.reshape((-1, 1, mask.shape[-2], mask.shape[-1])), size=(pixels.shape[1], pixels.shape[2]), mode="bilinear")
orig_pixels = pixels
pixels = orig_pixels.clone()
@@ -98,15 +137,26 @@ def resize_for_inpainting(pixels, mask=None):
x_offset = (pixels.shape[1] % 64) // 2
y_offset = (pixels.shape[2] % 64) // 2
pixels = pixels[:,x_offset:x + x_offset, y_offset:y + y_offset,:]
#pixels = pixels[:,x_offset:x + x_offset, y_offset:y + y_offset]
#mask = mask[:,:,x_offset:x + x_offset, y_offset:y + y_offset]
if mask != None:
mask = mask[:,:,x_offset:x + x_offset, y_offset:y + y_offset]
#m = (1.0 - mask.round()).squeeze(1)
#for i in range(3):
# pixels[:,:,:,i] -= 0.5
# pixels[:,:,:,i] *= m
# pixels[:,:,:,i] += 0.5
return pixels
# Add an alpha channel if the image doesn't have one
if pixels.shape[-1] == 3: # If RGB, convert to RGBA
alpha_channel = torch.ones((pixels.shape[0], pixels.shape[1], pixels.shape[2], 1), dtype=pixels.dtype)
pixels = torch.cat([pixels, alpha_channel], dim=-1)
# Apply the mask to create transparency in the alpha channel
if mask is not None:
m = (1.0 - mask.round()).squeeze(1) # Binary mask
pixels[:, :, :, 3] *= m # Modify alpha channel based on mask
# if mask != None:
# m = (1.0 - mask.round()).squeeze(1)
# for i in range(3):
# pixels[:,:,:,i] -= 0.5
# pixels[:,:,:,i] *= m
# pixels[:,:,:,i] += 0.5
return pixels, mask
def get_image_size(pixels):
"""
@@ -137,6 +187,9 @@ class DrawThingsImg2Img:
"guidance_scale": ("FLOAT", {"default": 3.5, "min": 0, "max": 25, "step": 0.1}),
"sampler": (["UniPC","DPM++ 2M Karras","Euler Ancestral", "DPM++ SDE Karras", "PLMS", "DDIM", "LCM", "Euler A Substep", "DPM++ SDE Substep", "TCD", "DPM++ 2M Trailing", "Euler A Trailing", "DPM++ SDE Trailing", "DDIM Trailing", "DPM++ 2M AYS", "Euler A AYS", "DPM++ SDE AYS"], {"default": "Euler A Trailing"}),
"steps": ("INT", {"default": 20, "min": 1, "max": 150, "step": 1}),
},
"optional": {
"optional_mask": ("MASK", {"tooltip": "inpainting mask"}),
}
}
@@ -144,14 +197,15 @@ class DrawThingsImg2Img:
RETURN_NAMES = ("generated_image",)
FUNCTION = "generate_image"
def generate_image(self, images, model, prompt, seed, width, height, guidance_scale, sampler, steps):
def generate_image(self, images, model, prompt, seed, width, height, guidance_scale, sampler, steps, optional_mask=None):
# Call the Draw Things API
api_url = "http://127.0.0.1:7860/sdapi/v1/img2img"
encoded_images = []
images_resized = resize_for_inpainting(images)
images_resized, mask_resized = resize_for_inpainting(images, optional_mask)
for image_tensor in images_resized:
encoded_images.append(image_to_base64(image_tensor))
#encoded_images.append(image_to_base64_2(image_tensor, True))
encoded_images.append(image_to_base64_with_alpha(image_tensor))
height, width = get_image_size(images_resized[0])
@@ -168,27 +222,10 @@ class DrawThingsImg2Img:
"init_images": encoded_images,
}
# response = requests.post(api_url, json=payload)
#
# # Raise an error if the request failed
# response.raise_for_status()
#
# # Parse the JSON response
# data = response.json()
# print("Dia duit!")
# #print(data)
# print(type(data))
# print(type(payload))
# Path to your PNG image file
#image_path = "/Users/jparker/data/sd_outputs/.people/marbro/inputs/1_512sq.JPG"
# Read the image and encode it as base64
#with open(image_path, "rb") as image_file:
# encoded_string = base64.b64encode(image_file.read()).decode('utf-8')
#print(payload)
#if mask_resized != None:
# #payload["mask"] = mask_to_base64(mask_resized[0])
# #payload["masks"] = mask_to_base64(mask_resized[0])
# payload["init_masks"] = mask_to_base64(mask_resized[0])
response = requests.post(api_url, json=payload)