2023-12-01 03:15:35 +01:00
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from typing import List, Dict
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2022-11-14 11:19:50 +01:00
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2023-12-01 03:15:35 +01:00
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import torch
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2023-05-13 07:45:27 +02:00
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from loguru import logger
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2024-01-04 14:39:59 +01:00
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import numpy as np
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2024-01-05 08:19:23 +01:00
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from iopaint.download import scan_models
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from iopaint.helper import switch_mps_device
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from iopaint.model import models, ControlNet, SD, SDXL
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from iopaint.model.utils import torch_gc, is_local_files_only
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from iopaint.model_info import ModelInfo, ModelType
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from iopaint.schema import InpaintRequest
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2022-04-15 18:11:51 +02:00
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2022-07-14 10:49:03 +02:00
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class ModelManager:
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def __init__(self, name: str, device: torch.device, **kwargs):
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self.name = name
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self.device = device
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self.kwargs = kwargs
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self.available_models: Dict[str, ModelInfo] = {}
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self.scan_models()
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self.enable_controlnet = kwargs.get("enable_controlnet", False)
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controlnet_method = kwargs.get("controlnet_method", None)
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if (
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controlnet_method is None
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and name in self.available_models
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and self.available_models[name].support_controlnet
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):
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controlnet_method = self.available_models[name].controlnets[0]
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self.controlnet_method = controlnet_method
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self.model = self.init_model(name, device, **kwargs)
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2023-12-24 08:32:27 +01:00
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@property
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def current_model(self) -> ModelInfo:
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return self.available_models[self.name]
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def init_model(self, name: str, device, **kwargs):
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logger.info(f"Loading model: {name}")
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if name not in self.available_models:
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raise NotImplementedError(
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f"Unsupported model: {name}. Available models: {list(self.available_models.keys())}"
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)
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model_info = self.available_models[name]
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kwargs = {
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**kwargs,
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"model_info": model_info,
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"enable_controlnet": self.enable_controlnet,
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"controlnet_method": self.controlnet_method,
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}
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if model_info.support_controlnet and self.enable_controlnet:
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return ControlNet(device, **kwargs)
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elif model_info.name in models:
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return models[name](device, **kwargs)
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else:
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if model_info.model_type in [
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ModelType.DIFFUSERS_SD_INPAINT,
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ModelType.DIFFUSERS_SD,
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]:
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return SD(device, **kwargs)
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if model_info.model_type in [
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ModelType.DIFFUSERS_SDXL_INPAINT,
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ModelType.DIFFUSERS_SDXL,
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]:
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return SDXL(device, **kwargs)
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raise NotImplementedError(f"Unsupported model: {name}")
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2022-04-17 17:31:12 +02:00
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2024-01-09 15:54:20 +01:00
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@torch.inference_mode()
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def __call__(self, image, mask, config: InpaintRequest):
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"""
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Args:
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image: [H, W, C] RGB
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mask: [H, W, 1] 255 means area to repaint
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config:
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Returns:
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BGR image
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"""
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self.switch_controlnet_method(config)
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self.enable_disable_freeu(config)
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self.enable_disable_lcm_lora(config)
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return self.model(image, mask, config).astype(np.uint8)
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def scan_models(self) -> List[ModelInfo]:
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available_models = scan_models()
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self.available_models = {it.name: it for it in available_models}
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return available_models
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def switch(self, new_name: str):
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if new_name == self.name:
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return
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old_name = self.name
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old_controlnet_method = self.controlnet_method
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self.name = new_name
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if (
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self.available_models[new_name].support_controlnet
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and self.controlnet_method
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not in self.available_models[new_name].controlnets
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):
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self.controlnet_method = self.available_models[new_name].controlnets[0]
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try:
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# TODO: enable/disable controlnet without reload model
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del self.model
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torch_gc()
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2023-02-11 06:30:09 +01:00
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self.model = self.init_model(
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new_name, switch_mps_device(new_name, self.device), **self.kwargs
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)
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except Exception as e:
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self.name = old_name
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self.controlnet_method = old_controlnet_method
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logger.info(f"Switch model from {old_name} to {new_name} failed, rollback")
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self.model = self.init_model(
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old_name, switch_mps_device(old_name, self.device), **self.kwargs
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)
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raise e
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def switch_controlnet_method(self, config):
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if not self.available_models[self.name].support_controlnet:
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return
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2023-12-22 07:00:30 +01:00
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if (
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self.enable_controlnet
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and config.controlnet_method
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and self.controlnet_method != config.controlnet_method
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):
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old_controlnet_method = self.controlnet_method
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self.controlnet_method = config.controlnet_method
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self.model.switch_controlnet_method(config.controlnet_method)
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logger.info(
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f"Switch Controlnet method from {old_controlnet_method} to {config.controlnet_method}"
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)
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elif self.enable_controlnet != config.enable_controlnet:
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self.enable_controlnet = config.enable_controlnet
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self.controlnet_method = config.controlnet_method
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2024-01-09 15:58:21 +01:00
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pipe_components = {
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"vae": self.model.model.vae,
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"text_encoder": self.model.model.text_encoder,
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"unet": self.model.model.unet,
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}
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if hasattr(self.model.model, "text_encoder_2"):
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pipe_components["text_encoder_2"] = self.model.model.text_encoder_2
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self.model = self.init_model(
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self.name,
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switch_mps_device(self.name, self.device),
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pipe_components=pipe_components,
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**self.kwargs,
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)
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if not config.enable_controlnet:
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logger.info(f"Disable controlnet")
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else:
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logger.info(f"Enable controlnet: {config.controlnet_method}")
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2023-12-30 16:36:44 +01:00
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def enable_disable_freeu(self, config: InpaintRequest):
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if str(self.model.device) == "mps":
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return
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if self.available_models[self.name].support_freeu:
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if config.sd_freeu:
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freeu_config = config.sd_freeu_config
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self.model.model.enable_freeu(
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s1=freeu_config.s1,
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s2=freeu_config.s2,
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b1=freeu_config.b1,
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b2=freeu_config.b2,
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)
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else:
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self.model.model.disable_freeu()
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def enable_disable_lcm_lora(self, config: InpaintRequest):
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if self.available_models[self.name].support_lcm_lora:
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# TODO: change this if load other lora is supported
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lcm_lora_loaded = bool(self.model.model.get_list_adapters())
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if config.sd_lcm_lora:
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if not lcm_lora_loaded:
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self.model.model.load_lora_weights(
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self.model.lcm_lora_id,
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weight_name="pytorch_lora_weights.safetensors",
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local_files_only=is_local_files_only(),
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)
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else:
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if lcm_lora_loaded:
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self.model.model.disable_lora()
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