Files
ssitu-ComfyUI_UltimateSDUps…/modules/processing.py
T
ssit 998a84b490 Attempt at supporting gligen
Difficult to test, not sure if it's working.
2023-05-22 16:15:17 -04:00

108 lines
3.7 KiB
Python

# Patched classes to adapt from A111 webui for ComfyUI
from nodes import common_ksampler, VAEEncode, VAEDecode
from utils import pil_to_tensor, tensor_to_pil, get_crop_region, expand_crop, crop_cond
from PIL import Image, ImageFilter
class StableDiffusionProcessing:
def __init__(self, init_img, model, positive, negative, vae, seed, steps, cfg, sampler_name, scheduler, denoise):
# Variables used by the USDU script
self.init_images = [init_img]
self.image_mask = None
self.mask_blur = 0
self.inpaint_full_res_padding = 0
self.width = init_img.width
self.height = init_img.height
# ComfyUI Sampler inputs
self.model = model
self.positive = positive
self.negative = negative
self.vae = vae
self.seed = seed
self.steps = steps
self.cfg = cfg
self.sampler_name = sampler_name
self.scheduler = scheduler
self.denoise = denoise
# Variables used only by this script
self.init_size = init_img.width, init_img.height
# Other required A1111 variables for the USDU script that is currently unused in this script
self.extra_generation_params = {}
class Processed:
def __init__(self, p: StableDiffusionProcessing, images: list, seed: int, info: str):
self.images = images
self.seed = seed
self.info = info
def infotext(self, p: StableDiffusionProcessing, index):
return None
def fix_seed(p: StableDiffusionProcessing):
pass
def process_images(p: StableDiffusionProcessing) -> Processed:
# Where the main image generation happens in A1111
# Setup
image_mask = p.image_mask.convert('L')
init_image = p.init_images[0]
# Blur the mask
if p.mask_blur > 0:
image_mask = image_mask.filter(ImageFilter.GaussianBlur(p.mask_blur))
# Locate the white region of the mask outlining the tile and add padding
crop_region = get_crop_region(image_mask, p.inpaint_full_res_padding)
crop_region, (p.width, p.height) = expand_crop(crop_region, image_mask.width, image_mask.height)
# Crop the init_image to get the tile that will be used for generation
tile = init_image.crop(crop_region)
initial_tile_size = tile.size
if tile.size != (p.width, p.height):
tile = tile.resize((p.width, p.height), Image.Resampling.LANCZOS)
# Crop conditioning
positive_cropped = crop_cond(p.positive, crop_region, p.init_size, init_image.size, (p.width, p.height))
negative_cropped = crop_cond(p.negative, crop_region, p.init_size, init_image.size, (p.width, p.height))
# Encode the image
vae_encoder = VAEEncode()
(latent,) = vae_encoder.encode(p.vae, pil_to_tensor(tile))
# Generate samples
(samples,) = common_ksampler(p.model, p.seed, p.steps, p.cfg, p.sampler_name,
p.scheduler, positive_cropped, negative_cropped, latent, denoise=p.denoise)
# Decode the sample
vae_decoder = VAEDecode()
(decoded,) = vae_decoder.decode(p.vae, samples)
# Convert the sample to a PIL image
tile_sampled = tensor_to_pil(decoded)
# Resize back to the original size
if tile.size != (p.width, p.height):
tile_sampled = tile_sampled.resize(initial_tile_size, Image.Resampling.LANCZOS)
# Put the tile into position
image_tile_only = Image.new('RGB', init_image.size)
image_tile_only.paste(tile_sampled, crop_region[:2])
# Add the mask as an alpha channel
image_tile_only.putalpha(image_mask)
# Add back the tile to the initial image according to the mask in the alpha channel
result = init_image.convert('RGBA')
result.alpha_composite(image_tile_only)
processed = Processed(p, [result], p.seed, None)
return processed