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from enum import IntEnum, Enum |
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disabled = 'Disabled' |
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enabled = 'Enabled' |
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subtle_variation = 'Vary (Subtle)' |
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strong_variation = 'Vary (Strong)' |
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upscale_15 = 'Upscale (1.5x)' |
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upscale_2 = 'Upscale (2x)' |
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upscale_fast = 'Upscale (Fast 2x)' |
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uov_list = [disabled, subtle_variation, strong_variation, upscale_15, upscale_2, upscale_fast] |
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enhancement_uov_before = "Before First Enhancement" |
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enhancement_uov_after = "After Last Enhancement" |
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enhancement_uov_processing_order = [enhancement_uov_before, enhancement_uov_after] |
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enhancement_uov_prompt_type_original = 'Original Prompts' |
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enhancement_uov_prompt_type_last_filled = 'Last Filled Enhancement Prompts' |
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enhancement_uov_prompt_types = [enhancement_uov_prompt_type_original, enhancement_uov_prompt_type_last_filled] |
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CIVITAI_NO_KARRAS = ["euler", "euler_ancestral", "heun", "dpm_fast", "dpm_adaptive", "ddim", "uni_pc"] |
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KSAMPLER = { |
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"euler": "Euler", |
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"euler_ancestral": "Euler a", |
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"heun": "Heun", |
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"heunpp2": "", |
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"dpm_2": "DPM2", |
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"dpm_2_ancestral": "DPM2 a", |
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"lms": "LMS", |
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"dpm_fast": "DPM fast", |
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"dpm_adaptive": "DPM adaptive", |
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"dpmpp_2s_ancestral": "DPM++ 2S a", |
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"dpmpp_sde": "DPM++ SDE", |
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"dpmpp_sde_gpu": "DPM++ SDE", |
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"dpmpp_2m": "DPM++ 2M", |
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"dpmpp_2m_sde": "DPM++ 2M SDE", |
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"dpmpp_2m_sde_gpu": "DPM++ 2M SDE", |
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"dpmpp_3m_sde": "", |
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"dpmpp_3m_sde_gpu": "", |
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"ddpm": "", |
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"lcm": "LCM", |
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"tcd": "TCD", |
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"restart": "Restart" |
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} |
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SAMPLER_EXTRA = { |
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"ddim": "DDIM", |
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"uni_pc": "UniPC", |
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"uni_pc_bh2": "" |
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} |
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SAMPLERS = KSAMPLER | SAMPLER_EXTRA |
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KSAMPLER_NAMES = list(KSAMPLER.keys()) |
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SCHEDULER_NAMES = ["normal", "karras", "exponential", "sgm_uniform", "simple", "ddim_uniform", "lcm", "turbo", "align_your_steps", "tcd", "edm_playground_v2.5"] |
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SAMPLER_NAMES = KSAMPLER_NAMES + list(SAMPLER_EXTRA.keys()) |
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sampler_list = SAMPLER_NAMES |
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scheduler_list = SCHEDULER_NAMES |
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clip_skip_max = 12 |
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default_vae = 'Default (model)' |
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refiner_swap_method = 'joint' |
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default_input_image_tab = 'uov_tab' |
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input_image_tab_ids = ['uov_tab', 'ip_tab', 'inpaint_tab', 'describe_tab', 'enhance_tab', 'metadata_tab'] |
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cn_ip = "ImagePrompt" |
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cn_ip_face = "FaceSwap" |
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cn_canny = "PyraCanny" |
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cn_cpds = "CPDS" |
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ip_list = [cn_ip, cn_canny, cn_cpds, cn_ip_face] |
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default_ip = cn_ip |
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default_parameters = { |
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cn_ip: (0.5, 0.6), cn_ip_face: (0.9, 0.75), cn_canny: (0.5, 1.0), cn_cpds: (0.5, 1.0) |
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} |
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output_formats = ['png', 'jpeg', 'webp'] |
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inpaint_mask_models = ['u2net', 'u2netp', 'u2net_human_seg', 'u2net_cloth_seg', 'silueta', 'isnet-general-use', 'isnet-anime', 'sam'] |
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inpaint_mask_cloth_category = ['full', 'upper', 'lower'] |
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inpaint_mask_sam_model = ['vit_b', 'vit_l', 'vit_h'] |
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inpaint_engine_versions = ['None', 'v1', 'v2.5', 'v2.6'] |
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inpaint_option_default = 'Inpaint or Outpaint (default)' |
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inpaint_option_detail = 'Improve Detail (face, hand, eyes, etc.)' |
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inpaint_option_modify = 'Modify Content (add objects, change background, etc.)' |
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inpaint_options = [inpaint_option_default, inpaint_option_detail, inpaint_option_modify] |
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describe_type_photo = 'Photograph' |
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describe_type_anime = 'Art/Anime' |
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describe_types = [describe_type_photo, describe_type_anime] |
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sdxl_aspect_ratios = [ |
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'704*1408', '704*1344', '768*1344', '768*1280', '832*1216', '832*1152', |
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'896*1152', '896*1088', '960*1088', '960*1024', '1024*1024', '1024*960', |
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'1088*960', '1088*896', '1152*896', '1152*832', '1216*832', '1280*768', |
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'1344*768', '1344*704', '1408*704', '1472*704', '1536*640', '1600*640', |
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'1664*576', '1728*576' |
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] |
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class MetadataScheme(Enum): |
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FOOOCUS = 'fooocus' |
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A1111 = 'a1111' |
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metadata_scheme = [ |
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(f'{MetadataScheme.FOOOCUS.value} (json)', MetadataScheme.FOOOCUS.value), |
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(f'{MetadataScheme.A1111.value} (plain text)', MetadataScheme.A1111.value), |
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] |
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class OutputFormat(Enum): |
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PNG = 'png' |
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JPEG = 'jpeg' |
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WEBP = 'webp' |
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@classmethod |
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def list(cls) -> list: |
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return list(map(lambda c: c.value, cls)) |
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class PerformanceLoRA(Enum): |
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QUALITY = None |
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SPEED = None |
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EXTREME_SPEED = 'sdxl_lcm_lora.safetensors' |
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LIGHTNING = 'sdxl_lightning_4step_lora.safetensors' |
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HYPER_SD = 'sdxl_hyper_sd_4step_lora.safetensors' |
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class Steps(IntEnum): |
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QUALITY = 60 |
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SPEED = 30 |
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EXTREME_SPEED = 8 |
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LIGHTNING = 4 |
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HYPER_SD = 4 |
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@classmethod |
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def keys(cls) -> list: |
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return list(map(lambda c: c, Steps.__members__)) |
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class StepsUOV(IntEnum): |
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QUALITY = 36 |
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SPEED = 18 |
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EXTREME_SPEED = 8 |
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LIGHTNING = 4 |
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HYPER_SD = 4 |
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class Performance(Enum): |
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QUALITY = 'Quality' |
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SPEED = 'Speed' |
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EXTREME_SPEED = 'Extreme Speed' |
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LIGHTNING = 'Lightning' |
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HYPER_SD = 'Hyper-SD' |
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@classmethod |
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def list(cls) -> list: |
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return list(map(lambda c: (c.name, c.value), cls)) |
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@classmethod |
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def values(cls) -> list: |
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return list(map(lambda c: c.value, cls)) |
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@classmethod |
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def by_steps(cls, steps: int | str): |
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return cls[Steps(int(steps)).name] |
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@classmethod |
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def has_restricted_features(cls, x) -> bool: |
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if isinstance(x, Performance): |
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x = x.value |
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return x in [cls.EXTREME_SPEED.value, cls.LIGHTNING.value, cls.HYPER_SD.value] |
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def steps(self) -> int | None: |
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return Steps[self.name].value if self.name in Steps.__members__ else None |
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def steps_uov(self) -> int | None: |
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return StepsUOV[self.name].value if self.name in StepsUOV.__members__ else None |
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def lora_filename(self) -> str | None: |
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return PerformanceLoRA[self.name].value if self.name in PerformanceLoRA.__members__ else None |
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