xyz_grid.py 38 KB

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  1. from collections import namedtuple
  2. from copy import copy
  3. from itertools import permutations, chain
  4. import random
  5. import csv
  6. import os.path
  7. from io import StringIO
  8. from PIL import Image
  9. import numpy as np
  10. import modules.scripts as scripts
  11. import gradio as gr
  12. from modules import images, sd_samplers, processing, sd_models, sd_vae, sd_schedulers, errors
  13. from modules.processing import process_images, Processed, StableDiffusionProcessingTxt2Img
  14. from modules.shared import opts, state
  15. import modules.shared as shared
  16. import modules.sd_samplers
  17. import modules.sd_models
  18. import modules.sd_vae
  19. import re
  20. from modules.ui_components import ToolButton
  21. fill_values_symbol = "\U0001f4d2" # 📒
  22. AxisInfo = namedtuple('AxisInfo', ['axis', 'values'])
  23. def apply_field(field):
  24. def fun(p, x, xs):
  25. setattr(p, field, x)
  26. return fun
  27. def apply_prompt(p, x, xs):
  28. if xs[0] not in p.prompt and xs[0] not in p.negative_prompt:
  29. raise RuntimeError(f"Prompt S/R did not find {xs[0]} in prompt or negative prompt.")
  30. p.prompt = p.prompt.replace(xs[0], x)
  31. p.negative_prompt = p.negative_prompt.replace(xs[0], x)
  32. def apply_order(p, x, xs):
  33. token_order = []
  34. # Initially grab the tokens from the prompt, so they can be replaced in order of earliest seen
  35. for token in x:
  36. token_order.append((p.prompt.find(token), token))
  37. token_order.sort(key=lambda t: t[0])
  38. prompt_parts = []
  39. # Split the prompt up, taking out the tokens
  40. for _, token in token_order:
  41. n = p.prompt.find(token)
  42. prompt_parts.append(p.prompt[0:n])
  43. p.prompt = p.prompt[n + len(token):]
  44. # Rebuild the prompt with the tokens in the order we want
  45. prompt_tmp = ""
  46. for idx, part in enumerate(prompt_parts):
  47. prompt_tmp += part
  48. prompt_tmp += x[idx]
  49. p.prompt = prompt_tmp + p.prompt
  50. def confirm_samplers(p, xs):
  51. for x in xs:
  52. if x.lower() not in sd_samplers.samplers_map:
  53. raise RuntimeError(f"Unknown sampler: {x}")
  54. def apply_checkpoint(p, x, xs):
  55. info = modules.sd_models.get_closet_checkpoint_match(x)
  56. if info is None:
  57. raise RuntimeError(f"Unknown checkpoint: {x}")
  58. p.override_settings['sd_model_checkpoint'] = info.name
  59. def confirm_checkpoints(p, xs):
  60. for x in xs:
  61. if modules.sd_models.get_closet_checkpoint_match(x) is None:
  62. raise RuntimeError(f"Unknown checkpoint: {x}")
  63. def confirm_checkpoints_or_none(p, xs):
  64. for x in xs:
  65. if x in (None, "", "None", "none"):
  66. continue
  67. if modules.sd_models.get_closet_checkpoint_match(x) is None:
  68. raise RuntimeError(f"Unknown checkpoint: {x}")
  69. def apply_clip_skip(p, x, xs):
  70. opts.data["CLIP_stop_at_last_layers"] = x
  71. def apply_upscale_latent_space(p, x, xs):
  72. if x.lower().strip() != '0':
  73. opts.data["use_scale_latent_for_hires_fix"] = True
  74. else:
  75. opts.data["use_scale_latent_for_hires_fix"] = False
  76. def find_vae(name: str):
  77. if name.lower() in ['auto', 'automatic']:
  78. return modules.sd_vae.unspecified
  79. if name.lower() == 'none':
  80. return None
  81. else:
  82. choices = [x for x in sorted(modules.sd_vae.vae_dict, key=lambda x: len(x)) if name.lower().strip() in x.lower()]
  83. if len(choices) == 0:
  84. print(f"No VAE found for {name}; using automatic")
  85. return modules.sd_vae.unspecified
  86. else:
  87. return modules.sd_vae.vae_dict[choices[0]]
  88. def apply_vae(p, x, xs):
  89. modules.sd_vae.reload_vae_weights(shared.sd_model, vae_file=find_vae(x))
  90. def apply_styles(p: StableDiffusionProcessingTxt2Img, x: str, _):
  91. p.styles.extend(x.split(','))
  92. def apply_uni_pc_order(p, x, xs):
  93. opts.data["uni_pc_order"] = min(x, p.steps - 1)
  94. def apply_face_restore(p, opt, x):
  95. opt = opt.lower()
  96. if opt == 'codeformer':
  97. is_active = True
  98. p.face_restoration_model = 'CodeFormer'
  99. elif opt == 'gfpgan':
  100. is_active = True
  101. p.face_restoration_model = 'GFPGAN'
  102. else:
  103. is_active = opt in ('true', 'yes', 'y', '1')
  104. p.restore_faces = is_active
  105. def apply_override(field, boolean: bool = False):
  106. def fun(p, x, xs):
  107. if boolean:
  108. x = True if x.lower() == "true" else False
  109. p.override_settings[field] = x
  110. return fun
  111. def boolean_choice(reverse: bool = False):
  112. def choice():
  113. return ["False", "True"] if reverse else ["True", "False"]
  114. return choice
  115. def format_value_add_label(p, opt, x):
  116. if type(x) == float:
  117. x = round(x, 8)
  118. return f"{opt.label}: {x}"
  119. def format_value(p, opt, x):
  120. if type(x) == float:
  121. x = round(x, 8)
  122. return x
  123. def format_value_join_list(p, opt, x):
  124. return ", ".join(x)
  125. def do_nothing(p, x, xs):
  126. pass
  127. def format_nothing(p, opt, x):
  128. return ""
  129. def format_remove_path(p, opt, x):
  130. return os.path.basename(x)
  131. def str_permutations(x):
  132. """dummy function for specifying it in AxisOption's type when you want to get a list of permutations"""
  133. return x
  134. def list_to_csv_string(data_list):
  135. with StringIO() as o:
  136. csv.writer(o).writerow(data_list)
  137. return o.getvalue().strip()
  138. def csv_string_to_list_strip(data_str):
  139. return list(map(str.strip, chain.from_iterable(csv.reader(StringIO(data_str)))))
  140. class AxisOption:
  141. def __init__(self, label, type, apply, format_value=format_value_add_label, confirm=None, cost=0.0, choices=None, prepare=None):
  142. self.label = label
  143. self.type = type
  144. self.apply = apply
  145. self.format_value = format_value
  146. self.confirm = confirm
  147. self.cost = cost
  148. self.prepare = prepare
  149. self.choices = choices
  150. class AxisOptionImg2Img(AxisOption):
  151. def __init__(self, *args, **kwargs):
  152. super().__init__(*args, **kwargs)
  153. self.is_img2img = True
  154. class AxisOptionTxt2Img(AxisOption):
  155. def __init__(self, *args, **kwargs):
  156. super().__init__(*args, **kwargs)
  157. self.is_img2img = False
  158. axis_options = [
  159. AxisOption("Nothing", str, do_nothing, format_value=format_nothing),
  160. AxisOption("Seed", int, apply_field("seed")),
  161. AxisOption("Var. seed", int, apply_field("subseed")),
  162. AxisOption("Var. strength", float, apply_field("subseed_strength")),
  163. AxisOption("Steps", int, apply_field("steps")),
  164. AxisOptionTxt2Img("Hires steps", int, apply_field("hr_second_pass_steps")),
  165. AxisOption("CFG Scale", float, apply_field("cfg_scale")),
  166. AxisOptionImg2Img("Image CFG Scale", float, apply_field("image_cfg_scale")),
  167. AxisOption("Prompt S/R", str, apply_prompt, format_value=format_value),
  168. AxisOption("Prompt order", str_permutations, apply_order, format_value=format_value_join_list),
  169. AxisOptionTxt2Img("Sampler", str, apply_field("sampler_name"), format_value=format_value, confirm=confirm_samplers, choices=lambda: [x.name for x in sd_samplers.samplers if x.name not in opts.hide_samplers]),
  170. AxisOptionTxt2Img("Hires sampler", str, apply_field("hr_sampler_name"), confirm=confirm_samplers, choices=lambda: [x.name for x in sd_samplers.samplers_for_img2img if x.name not in opts.hide_samplers]),
  171. AxisOptionImg2Img("Sampler", str, apply_field("sampler_name"), format_value=format_value, confirm=confirm_samplers, choices=lambda: [x.name for x in sd_samplers.samplers_for_img2img if x.name not in opts.hide_samplers]),
  172. AxisOption("Checkpoint name", str, apply_checkpoint, format_value=format_remove_path, confirm=confirm_checkpoints, cost=1.0, choices=lambda: sorted(sd_models.checkpoints_list, key=str.casefold)),
  173. AxisOption("Negative Guidance minimum sigma", float, apply_field("s_min_uncond")),
  174. AxisOption("Sigma Churn", float, apply_field("s_churn")),
  175. AxisOption("Sigma min", float, apply_field("s_tmin")),
  176. AxisOption("Sigma max", float, apply_field("s_tmax")),
  177. AxisOption("Sigma noise", float, apply_field("s_noise")),
  178. AxisOption("Schedule type", str, apply_field("scheduler"), choices=lambda: [x.label for x in sd_schedulers.schedulers]),
  179. AxisOption("Schedule min sigma", float, apply_override("sigma_min")),
  180. AxisOption("Schedule max sigma", float, apply_override("sigma_max")),
  181. AxisOption("Schedule rho", float, apply_override("rho")),
  182. AxisOption("Eta", float, apply_field("eta")),
  183. AxisOption("Clip skip", int, apply_clip_skip),
  184. AxisOption("Denoising", float, apply_field("denoising_strength")),
  185. AxisOption("Initial noise multiplier", float, apply_field("initial_noise_multiplier")),
  186. AxisOption("Extra noise", float, apply_override("img2img_extra_noise")),
  187. AxisOptionTxt2Img("Hires upscaler", str, apply_field("hr_upscaler"), choices=lambda: [*shared.latent_upscale_modes, *[x.name for x in shared.sd_upscalers]]),
  188. AxisOptionImg2Img("Cond. Image Mask Weight", float, apply_field("inpainting_mask_weight")),
  189. AxisOption("VAE", str, apply_vae, cost=0.7, choices=lambda: ['None'] + list(sd_vae.vae_dict)),
  190. AxisOption("Styles", str, apply_styles, choices=lambda: list(shared.prompt_styles.styles)),
  191. AxisOption("UniPC Order", int, apply_uni_pc_order, cost=0.5),
  192. AxisOption("Face restore", str, apply_face_restore, format_value=format_value),
  193. AxisOption("Token merging ratio", float, apply_override('token_merging_ratio')),
  194. AxisOption("Token merging ratio high-res", float, apply_override('token_merging_ratio_hr')),
  195. AxisOption("Always discard next-to-last sigma", str, apply_override('always_discard_next_to_last_sigma', boolean=True), choices=boolean_choice(reverse=True)),
  196. AxisOption("SGM noise multiplier", str, apply_override('sgm_noise_multiplier', boolean=True), choices=boolean_choice(reverse=True)),
  197. AxisOption("Refiner checkpoint", str, apply_field('refiner_checkpoint'), format_value=format_remove_path, confirm=confirm_checkpoints_or_none, cost=1.0, choices=lambda: ['None'] + sorted(sd_models.checkpoints_list, key=str.casefold)),
  198. AxisOption("Refiner switch at", float, apply_field('refiner_switch_at')),
  199. AxisOption("RNG source", str, apply_override("randn_source"), choices=lambda: ["GPU", "CPU", "NV"]),
  200. AxisOption("FP8 mode", str, apply_override("fp8_storage"), cost=0.9, choices=lambda: ["Disable", "Enable for SDXL", "Enable"]),
  201. ]
  202. def draw_xyz_grid(p, xs, ys, zs, x_labels, y_labels, z_labels, cell, draw_legend, include_lone_images, include_sub_grids, first_axes_processed, second_axes_processed, margin_size):
  203. hor_texts = [[images.GridAnnotation(x)] for x in x_labels]
  204. ver_texts = [[images.GridAnnotation(y)] for y in y_labels]
  205. title_texts = [[images.GridAnnotation(z)] for z in z_labels]
  206. list_size = (len(xs) * len(ys) * len(zs))
  207. processed_result = None
  208. state.job_count = list_size * p.n_iter
  209. def process_cell(x, y, z, ix, iy, iz):
  210. nonlocal processed_result
  211. def index(ix, iy, iz):
  212. return ix + iy * len(xs) + iz * len(xs) * len(ys)
  213. state.job = f"{index(ix, iy, iz) + 1} out of {list_size}"
  214. processed: Processed = cell(x, y, z, ix, iy, iz)
  215. if processed_result is None:
  216. # Use our first processed result object as a template container to hold our full results
  217. processed_result = copy(processed)
  218. processed_result.images = [None] * list_size
  219. processed_result.all_prompts = [None] * list_size
  220. processed_result.all_seeds = [None] * list_size
  221. processed_result.infotexts = [None] * list_size
  222. processed_result.index_of_first_image = 1
  223. idx = index(ix, iy, iz)
  224. if processed.images:
  225. # Non-empty list indicates some degree of success.
  226. processed_result.images[idx] = processed.images[0]
  227. processed_result.all_prompts[idx] = processed.prompt
  228. processed_result.all_seeds[idx] = processed.seed
  229. processed_result.infotexts[idx] = processed.infotexts[0]
  230. else:
  231. cell_mode = "P"
  232. cell_size = (processed_result.width, processed_result.height)
  233. if processed_result.images[0] is not None:
  234. cell_mode = processed_result.images[0].mode
  235. # This corrects size in case of batches:
  236. cell_size = processed_result.images[0].size
  237. processed_result.images[idx] = Image.new(cell_mode, cell_size)
  238. if first_axes_processed == 'x':
  239. for ix, x in enumerate(xs):
  240. if second_axes_processed == 'y':
  241. for iy, y in enumerate(ys):
  242. for iz, z in enumerate(zs):
  243. process_cell(x, y, z, ix, iy, iz)
  244. else:
  245. for iz, z in enumerate(zs):
  246. for iy, y in enumerate(ys):
  247. process_cell(x, y, z, ix, iy, iz)
  248. elif first_axes_processed == 'y':
  249. for iy, y in enumerate(ys):
  250. if second_axes_processed == 'x':
  251. for ix, x in enumerate(xs):
  252. for iz, z in enumerate(zs):
  253. process_cell(x, y, z, ix, iy, iz)
  254. else:
  255. for iz, z in enumerate(zs):
  256. for ix, x in enumerate(xs):
  257. process_cell(x, y, z, ix, iy, iz)
  258. elif first_axes_processed == 'z':
  259. for iz, z in enumerate(zs):
  260. if second_axes_processed == 'x':
  261. for ix, x in enumerate(xs):
  262. for iy, y in enumerate(ys):
  263. process_cell(x, y, z, ix, iy, iz)
  264. else:
  265. for iy, y in enumerate(ys):
  266. for ix, x in enumerate(xs):
  267. process_cell(x, y, z, ix, iy, iz)
  268. if not processed_result:
  269. # Should never happen, I've only seen it on one of four open tabs and it needed to refresh.
  270. print("Unexpected error: Processing could not begin, you may need to refresh the tab or restart the service.")
  271. return Processed(p, [])
  272. elif not any(processed_result.images):
  273. print("Unexpected error: draw_xyz_grid failed to return even a single processed image")
  274. return Processed(p, [])
  275. z_count = len(zs)
  276. for i in range(z_count):
  277. start_index = (i * len(xs) * len(ys)) + i
  278. end_index = start_index + len(xs) * len(ys)
  279. grid = images.image_grid(processed_result.images[start_index:end_index], rows=len(ys))
  280. if draw_legend:
  281. grid = images.draw_grid_annotations(grid, processed_result.images[start_index].size[0], processed_result.images[start_index].size[1], hor_texts, ver_texts, margin_size)
  282. processed_result.images.insert(i, grid)
  283. processed_result.all_prompts.insert(i, processed_result.all_prompts[start_index])
  284. processed_result.all_seeds.insert(i, processed_result.all_seeds[start_index])
  285. processed_result.infotexts.insert(i, processed_result.infotexts[start_index])
  286. sub_grid_size = processed_result.images[0].size
  287. z_grid = images.image_grid(processed_result.images[:z_count], rows=1)
  288. if draw_legend:
  289. z_grid = images.draw_grid_annotations(z_grid, sub_grid_size[0], sub_grid_size[1], title_texts, [[images.GridAnnotation()]])
  290. processed_result.images.insert(0, z_grid)
  291. # TODO: Deeper aspects of the program rely on grid info being misaligned between metadata arrays, which is not ideal.
  292. # processed_result.all_prompts.insert(0, processed_result.all_prompts[0])
  293. # processed_result.all_seeds.insert(0, processed_result.all_seeds[0])
  294. processed_result.infotexts.insert(0, processed_result.infotexts[0])
  295. return processed_result
  296. class SharedSettingsStackHelper(object):
  297. def __enter__(self):
  298. self.CLIP_stop_at_last_layers = opts.CLIP_stop_at_last_layers
  299. self.vae = opts.sd_vae
  300. self.uni_pc_order = opts.uni_pc_order
  301. def __exit__(self, exc_type, exc_value, tb):
  302. opts.data["sd_vae"] = self.vae
  303. opts.data["uni_pc_order"] = self.uni_pc_order
  304. modules.sd_models.reload_model_weights()
  305. modules.sd_vae.reload_vae_weights()
  306. opts.data["CLIP_stop_at_last_layers"] = self.CLIP_stop_at_last_layers
  307. re_range = re.compile(r"\s*([+-]?\s*\d+)\s*-\s*([+-]?\s*\d+)(?:\s*\(([+-]\d+)\s*\))?\s*")
  308. re_range_float = re.compile(r"\s*([+-]?\s*\d+(?:.\d*)?)\s*-\s*([+-]?\s*\d+(?:.\d*)?)(?:\s*\(([+-]\d+(?:.\d*)?)\s*\))?\s*")
  309. re_range_count = re.compile(r"\s*([+-]?\s*\d+)\s*-\s*([+-]?\s*\d+)(?:\s*\[(\d+)\s*])?\s*")
  310. re_range_count_float = re.compile(r"\s*([+-]?\s*\d+(?:.\d*)?)\s*-\s*([+-]?\s*\d+(?:.\d*)?)(?:\s*\[(\d+(?:.\d*)?)\s*])?\s*")
  311. class Script(scripts.Script):
  312. def title(self):
  313. return "X/Y/Z plot"
  314. def ui(self, is_img2img):
  315. self.current_axis_options = [x for x in axis_options if type(x) == AxisOption or x.is_img2img == is_img2img]
  316. with gr.Row():
  317. with gr.Column(scale=19):
  318. with gr.Row():
  319. x_type = gr.Dropdown(label="X type", choices=[x.label for x in self.current_axis_options], value=self.current_axis_options[1].label, type="index", elem_id=self.elem_id("x_type"))
  320. x_values = gr.Textbox(label="X values", lines=1, elem_id=self.elem_id("x_values"))
  321. x_values_dropdown = gr.Dropdown(label="X values", visible=False, multiselect=True, interactive=True)
  322. fill_x_button = ToolButton(value=fill_values_symbol, elem_id="xyz_grid_fill_x_tool_button", visible=False)
  323. with gr.Row():
  324. y_type = gr.Dropdown(label="Y type", choices=[x.label for x in self.current_axis_options], value=self.current_axis_options[0].label, type="index", elem_id=self.elem_id("y_type"))
  325. y_values = gr.Textbox(label="Y values", lines=1, elem_id=self.elem_id("y_values"))
  326. y_values_dropdown = gr.Dropdown(label="Y values", visible=False, multiselect=True, interactive=True)
  327. fill_y_button = ToolButton(value=fill_values_symbol, elem_id="xyz_grid_fill_y_tool_button", visible=False)
  328. with gr.Row():
  329. z_type = gr.Dropdown(label="Z type", choices=[x.label for x in self.current_axis_options], value=self.current_axis_options[0].label, type="index", elem_id=self.elem_id("z_type"))
  330. z_values = gr.Textbox(label="Z values", lines=1, elem_id=self.elem_id("z_values"))
  331. z_values_dropdown = gr.Dropdown(label="Z values", visible=False, multiselect=True, interactive=True)
  332. fill_z_button = ToolButton(value=fill_values_symbol, elem_id="xyz_grid_fill_z_tool_button", visible=False)
  333. with gr.Row(variant="compact", elem_id="axis_options"):
  334. with gr.Column():
  335. draw_legend = gr.Checkbox(label='Draw legend', value=True, elem_id=self.elem_id("draw_legend"))
  336. no_fixed_seeds = gr.Checkbox(label='Keep -1 for seeds', value=False, elem_id=self.elem_id("no_fixed_seeds"))
  337. with gr.Row():
  338. vary_seeds_x = gr.Checkbox(label='Vary seeds for X', value=False, min_width=80, elem_id=self.elem_id("vary_seeds_x"), tooltip="Use different seeds for images along X axis.")
  339. vary_seeds_y = gr.Checkbox(label='Vary seeds for Y', value=False, min_width=80, elem_id=self.elem_id("vary_seeds_y"), tooltip="Use different seeds for images along Y axis.")
  340. vary_seeds_z = gr.Checkbox(label='Vary seeds for Z', value=False, min_width=80, elem_id=self.elem_id("vary_seeds_z"), tooltip="Use different seeds for images along Z axis.")
  341. with gr.Column():
  342. include_lone_images = gr.Checkbox(label='Include Sub Images', value=False, elem_id=self.elem_id("include_lone_images"))
  343. include_sub_grids = gr.Checkbox(label='Include Sub Grids', value=False, elem_id=self.elem_id("include_sub_grids"))
  344. csv_mode = gr.Checkbox(label='Use text inputs instead of dropdowns', value=False, elem_id=self.elem_id("csv_mode"))
  345. with gr.Column():
  346. margin_size = gr.Slider(label="Grid margins (px)", minimum=0, maximum=500, value=0, step=2, elem_id=self.elem_id("margin_size"))
  347. with gr.Row(variant="compact", elem_id="swap_axes"):
  348. swap_xy_axes_button = gr.Button(value="Swap X/Y axes", elem_id="xy_grid_swap_axes_button")
  349. swap_yz_axes_button = gr.Button(value="Swap Y/Z axes", elem_id="yz_grid_swap_axes_button")
  350. swap_xz_axes_button = gr.Button(value="Swap X/Z axes", elem_id="xz_grid_swap_axes_button")
  351. def swap_axes(axis1_type, axis1_values, axis1_values_dropdown, axis2_type, axis2_values, axis2_values_dropdown):
  352. return self.current_axis_options[axis2_type].label, axis2_values, axis2_values_dropdown, self.current_axis_options[axis1_type].label, axis1_values, axis1_values_dropdown
  353. xy_swap_args = [x_type, x_values, x_values_dropdown, y_type, y_values, y_values_dropdown]
  354. swap_xy_axes_button.click(swap_axes, inputs=xy_swap_args, outputs=xy_swap_args)
  355. yz_swap_args = [y_type, y_values, y_values_dropdown, z_type, z_values, z_values_dropdown]
  356. swap_yz_axes_button.click(swap_axes, inputs=yz_swap_args, outputs=yz_swap_args)
  357. xz_swap_args = [x_type, x_values, x_values_dropdown, z_type, z_values, z_values_dropdown]
  358. swap_xz_axes_button.click(swap_axes, inputs=xz_swap_args, outputs=xz_swap_args)
  359. def fill(axis_type, csv_mode):
  360. axis = self.current_axis_options[axis_type]
  361. if axis.choices:
  362. if csv_mode:
  363. return list_to_csv_string(axis.choices()), gr.update()
  364. else:
  365. return gr.update(), axis.choices()
  366. else:
  367. return gr.update(), gr.update()
  368. fill_x_button.click(fn=fill, inputs=[x_type, csv_mode], outputs=[x_values, x_values_dropdown])
  369. fill_y_button.click(fn=fill, inputs=[y_type, csv_mode], outputs=[y_values, y_values_dropdown])
  370. fill_z_button.click(fn=fill, inputs=[z_type, csv_mode], outputs=[z_values, z_values_dropdown])
  371. def select_axis(axis_type, axis_values, axis_values_dropdown, csv_mode):
  372. axis_type = axis_type or 0 # if axle type is None set to 0
  373. choices = self.current_axis_options[axis_type].choices
  374. has_choices = choices is not None
  375. if has_choices:
  376. choices = choices()
  377. if csv_mode:
  378. if axis_values_dropdown:
  379. axis_values = list_to_csv_string(list(filter(lambda x: x in choices, axis_values_dropdown)))
  380. axis_values_dropdown = []
  381. else:
  382. if axis_values:
  383. axis_values_dropdown = list(filter(lambda x: x in choices, csv_string_to_list_strip(axis_values)))
  384. axis_values = ""
  385. return (gr.Button.update(visible=has_choices), gr.Textbox.update(visible=not has_choices or csv_mode, value=axis_values),
  386. gr.update(choices=choices if has_choices else None, visible=has_choices and not csv_mode, value=axis_values_dropdown))
  387. x_type.change(fn=select_axis, inputs=[x_type, x_values, x_values_dropdown, csv_mode], outputs=[fill_x_button, x_values, x_values_dropdown])
  388. y_type.change(fn=select_axis, inputs=[y_type, y_values, y_values_dropdown, csv_mode], outputs=[fill_y_button, y_values, y_values_dropdown])
  389. z_type.change(fn=select_axis, inputs=[z_type, z_values, z_values_dropdown, csv_mode], outputs=[fill_z_button, z_values, z_values_dropdown])
  390. def change_choice_mode(csv_mode, x_type, x_values, x_values_dropdown, y_type, y_values, y_values_dropdown, z_type, z_values, z_values_dropdown):
  391. _fill_x_button, _x_values, _x_values_dropdown = select_axis(x_type, x_values, x_values_dropdown, csv_mode)
  392. _fill_y_button, _y_values, _y_values_dropdown = select_axis(y_type, y_values, y_values_dropdown, csv_mode)
  393. _fill_z_button, _z_values, _z_values_dropdown = select_axis(z_type, z_values, z_values_dropdown, csv_mode)
  394. return _fill_x_button, _x_values, _x_values_dropdown, _fill_y_button, _y_values, _y_values_dropdown, _fill_z_button, _z_values, _z_values_dropdown
  395. csv_mode.change(fn=change_choice_mode, inputs=[csv_mode, x_type, x_values, x_values_dropdown, y_type, y_values, y_values_dropdown, z_type, z_values, z_values_dropdown], outputs=[fill_x_button, x_values, x_values_dropdown, fill_y_button, y_values, y_values_dropdown, fill_z_button, z_values, z_values_dropdown])
  396. def get_dropdown_update_from_params(axis, params):
  397. val_key = f"{axis} Values"
  398. vals = params.get(val_key, "")
  399. valslist = csv_string_to_list_strip(vals)
  400. return gr.update(value=valslist)
  401. self.infotext_fields = (
  402. (x_type, "X Type"),
  403. (x_values, "X Values"),
  404. (x_values_dropdown, lambda params: get_dropdown_update_from_params("X", params)),
  405. (y_type, "Y Type"),
  406. (y_values, "Y Values"),
  407. (y_values_dropdown, lambda params: get_dropdown_update_from_params("Y", params)),
  408. (z_type, "Z Type"),
  409. (z_values, "Z Values"),
  410. (z_values_dropdown, lambda params: get_dropdown_update_from_params("Z", params)),
  411. )
  412. return [x_type, x_values, x_values_dropdown, y_type, y_values, y_values_dropdown, z_type, z_values, z_values_dropdown, draw_legend, include_lone_images, include_sub_grids, no_fixed_seeds, vary_seeds_x, vary_seeds_y, vary_seeds_z, margin_size, csv_mode]
  413. def run(self, p, x_type, x_values, x_values_dropdown, y_type, y_values, y_values_dropdown, z_type, z_values, z_values_dropdown, draw_legend, include_lone_images, include_sub_grids, no_fixed_seeds, vary_seeds_x, vary_seeds_y, vary_seeds_z, margin_size, csv_mode):
  414. x_type, y_type, z_type = x_type or 0, y_type or 0, z_type or 0 # if axle type is None set to 0
  415. if not no_fixed_seeds:
  416. modules.processing.fix_seed(p)
  417. if not opts.return_grid:
  418. p.batch_size = 1
  419. def process_axis(opt, vals, vals_dropdown):
  420. if opt.label == 'Nothing':
  421. return [0]
  422. if opt.choices is not None and not csv_mode:
  423. valslist = vals_dropdown
  424. elif opt.prepare is not None:
  425. valslist = opt.prepare(vals)
  426. else:
  427. valslist = csv_string_to_list_strip(vals)
  428. if opt.type == int:
  429. valslist_ext = []
  430. for val in valslist:
  431. if val.strip() == '':
  432. continue
  433. m = re_range.fullmatch(val)
  434. mc = re_range_count.fullmatch(val)
  435. if m is not None:
  436. start = int(m.group(1))
  437. end = int(m.group(2))+1
  438. step = int(m.group(3)) if m.group(3) is not None else 1
  439. valslist_ext += list(range(start, end, step))
  440. elif mc is not None:
  441. start = int(mc.group(1))
  442. end = int(mc.group(2))
  443. num = int(mc.group(3)) if mc.group(3) is not None else 1
  444. valslist_ext += [int(x) for x in np.linspace(start=start, stop=end, num=num).tolist()]
  445. else:
  446. valslist_ext.append(val)
  447. valslist = valslist_ext
  448. elif opt.type == float:
  449. valslist_ext = []
  450. for val in valslist:
  451. if val.strip() == '':
  452. continue
  453. m = re_range_float.fullmatch(val)
  454. mc = re_range_count_float.fullmatch(val)
  455. if m is not None:
  456. start = float(m.group(1))
  457. end = float(m.group(2))
  458. step = float(m.group(3)) if m.group(3) is not None else 1
  459. valslist_ext += np.arange(start, end + step, step).tolist()
  460. elif mc is not None:
  461. start = float(mc.group(1))
  462. end = float(mc.group(2))
  463. num = int(mc.group(3)) if mc.group(3) is not None else 1
  464. valslist_ext += np.linspace(start=start, stop=end, num=num).tolist()
  465. else:
  466. valslist_ext.append(val)
  467. valslist = valslist_ext
  468. elif opt.type == str_permutations:
  469. valslist = list(permutations(valslist))
  470. valslist = [opt.type(x) for x in valslist]
  471. # Confirm options are valid before starting
  472. if opt.confirm:
  473. opt.confirm(p, valslist)
  474. return valslist
  475. x_opt = self.current_axis_options[x_type]
  476. if x_opt.choices is not None and not csv_mode:
  477. x_values = list_to_csv_string(x_values_dropdown)
  478. xs = process_axis(x_opt, x_values, x_values_dropdown)
  479. y_opt = self.current_axis_options[y_type]
  480. if y_opt.choices is not None and not csv_mode:
  481. y_values = list_to_csv_string(y_values_dropdown)
  482. ys = process_axis(y_opt, y_values, y_values_dropdown)
  483. z_opt = self.current_axis_options[z_type]
  484. if z_opt.choices is not None and not csv_mode:
  485. z_values = list_to_csv_string(z_values_dropdown)
  486. zs = process_axis(z_opt, z_values, z_values_dropdown)
  487. # this could be moved to common code, but unlikely to be ever triggered anywhere else
  488. Image.MAX_IMAGE_PIXELS = None # disable check in Pillow and rely on check below to allow large custom image sizes
  489. grid_mp = round(len(xs) * len(ys) * len(zs) * p.width * p.height / 1000000)
  490. assert grid_mp < opts.img_max_size_mp, f'Error: Resulting grid would be too large ({grid_mp} MPixels) (max configured size is {opts.img_max_size_mp} MPixels)'
  491. def fix_axis_seeds(axis_opt, axis_list):
  492. if axis_opt.label in ['Seed', 'Var. seed']:
  493. return [int(random.randrange(4294967294)) if val is None or val == '' or val == -1 else val for val in axis_list]
  494. else:
  495. return axis_list
  496. if not no_fixed_seeds:
  497. xs = fix_axis_seeds(x_opt, xs)
  498. ys = fix_axis_seeds(y_opt, ys)
  499. zs = fix_axis_seeds(z_opt, zs)
  500. if x_opt.label == 'Steps':
  501. total_steps = sum(xs) * len(ys) * len(zs)
  502. elif y_opt.label == 'Steps':
  503. total_steps = sum(ys) * len(xs) * len(zs)
  504. elif z_opt.label == 'Steps':
  505. total_steps = sum(zs) * len(xs) * len(ys)
  506. else:
  507. total_steps = p.steps * len(xs) * len(ys) * len(zs)
  508. if isinstance(p, StableDiffusionProcessingTxt2Img) and p.enable_hr:
  509. if x_opt.label == "Hires steps":
  510. total_steps += sum(xs) * len(ys) * len(zs)
  511. elif y_opt.label == "Hires steps":
  512. total_steps += sum(ys) * len(xs) * len(zs)
  513. elif z_opt.label == "Hires steps":
  514. total_steps += sum(zs) * len(xs) * len(ys)
  515. elif p.hr_second_pass_steps:
  516. total_steps += p.hr_second_pass_steps * len(xs) * len(ys) * len(zs)
  517. else:
  518. total_steps *= 2
  519. total_steps *= p.n_iter
  520. image_cell_count = p.n_iter * p.batch_size
  521. cell_console_text = f"; {image_cell_count} images per cell" if image_cell_count > 1 else ""
  522. plural_s = 's' if len(zs) > 1 else ''
  523. print(f"X/Y/Z plot will create {len(xs) * len(ys) * len(zs) * image_cell_count} images on {len(zs)} {len(xs)}x{len(ys)} grid{plural_s}{cell_console_text}. (Total steps to process: {total_steps})")
  524. shared.total_tqdm.updateTotal(total_steps)
  525. state.xyz_plot_x = AxisInfo(x_opt, xs)
  526. state.xyz_plot_y = AxisInfo(y_opt, ys)
  527. state.xyz_plot_z = AxisInfo(z_opt, zs)
  528. # If one of the axes is very slow to change between (like SD model
  529. # checkpoint), then make sure it is in the outer iteration of the nested
  530. # `for` loop.
  531. first_axes_processed = 'z'
  532. second_axes_processed = 'y'
  533. if x_opt.cost > y_opt.cost and x_opt.cost > z_opt.cost:
  534. first_axes_processed = 'x'
  535. if y_opt.cost > z_opt.cost:
  536. second_axes_processed = 'y'
  537. else:
  538. second_axes_processed = 'z'
  539. elif y_opt.cost > x_opt.cost and y_opt.cost > z_opt.cost:
  540. first_axes_processed = 'y'
  541. if x_opt.cost > z_opt.cost:
  542. second_axes_processed = 'x'
  543. else:
  544. second_axes_processed = 'z'
  545. elif z_opt.cost > x_opt.cost and z_opt.cost > y_opt.cost:
  546. first_axes_processed = 'z'
  547. if x_opt.cost > y_opt.cost:
  548. second_axes_processed = 'x'
  549. else:
  550. second_axes_processed = 'y'
  551. grid_infotext = [None] * (1 + len(zs))
  552. def cell(x, y, z, ix, iy, iz):
  553. if shared.state.interrupted or state.stopping_generation:
  554. return Processed(p, [], p.seed, "")
  555. pc = copy(p)
  556. pc.styles = pc.styles[:]
  557. x_opt.apply(pc, x, xs)
  558. y_opt.apply(pc, y, ys)
  559. z_opt.apply(pc, z, zs)
  560. xdim = len(xs) if vary_seeds_x else 1
  561. ydim = len(ys) if vary_seeds_y else 1
  562. if vary_seeds_x:
  563. pc.seed += ix
  564. if vary_seeds_y:
  565. pc.seed += iy * xdim
  566. if vary_seeds_z:
  567. pc.seed += iz * xdim * ydim
  568. try:
  569. res = process_images(pc)
  570. except Exception as e:
  571. errors.display(e, "generating image for xyz plot")
  572. res = Processed(p, [], p.seed, "")
  573. # Sets subgrid infotexts
  574. subgrid_index = 1 + iz
  575. if grid_infotext[subgrid_index] is None and ix == 0 and iy == 0:
  576. pc.extra_generation_params = copy(pc.extra_generation_params)
  577. pc.extra_generation_params['Script'] = self.title()
  578. if x_opt.label != 'Nothing':
  579. pc.extra_generation_params["X Type"] = x_opt.label
  580. pc.extra_generation_params["X Values"] = x_values
  581. if x_opt.label in ["Seed", "Var. seed"] and not no_fixed_seeds:
  582. pc.extra_generation_params["Fixed X Values"] = ", ".join([str(x) for x in xs])
  583. if y_opt.label != 'Nothing':
  584. pc.extra_generation_params["Y Type"] = y_opt.label
  585. pc.extra_generation_params["Y Values"] = y_values
  586. if y_opt.label in ["Seed", "Var. seed"] and not no_fixed_seeds:
  587. pc.extra_generation_params["Fixed Y Values"] = ", ".join([str(y) for y in ys])
  588. grid_infotext[subgrid_index] = processing.create_infotext(pc, pc.all_prompts, pc.all_seeds, pc.all_subseeds)
  589. # Sets main grid infotext
  590. if grid_infotext[0] is None and ix == 0 and iy == 0 and iz == 0:
  591. pc.extra_generation_params = copy(pc.extra_generation_params)
  592. if z_opt.label != 'Nothing':
  593. pc.extra_generation_params["Z Type"] = z_opt.label
  594. pc.extra_generation_params["Z Values"] = z_values
  595. if z_opt.label in ["Seed", "Var. seed"] and not no_fixed_seeds:
  596. pc.extra_generation_params["Fixed Z Values"] = ", ".join([str(z) for z in zs])
  597. grid_infotext[0] = processing.create_infotext(pc, pc.all_prompts, pc.all_seeds, pc.all_subseeds)
  598. return res
  599. with SharedSettingsStackHelper():
  600. processed = draw_xyz_grid(
  601. p,
  602. xs=xs,
  603. ys=ys,
  604. zs=zs,
  605. x_labels=[x_opt.format_value(p, x_opt, x) for x in xs],
  606. y_labels=[y_opt.format_value(p, y_opt, y) for y in ys],
  607. z_labels=[z_opt.format_value(p, z_opt, z) for z in zs],
  608. cell=cell,
  609. draw_legend=draw_legend,
  610. include_lone_images=include_lone_images,
  611. include_sub_grids=include_sub_grids,
  612. first_axes_processed=first_axes_processed,
  613. second_axes_processed=second_axes_processed,
  614. margin_size=margin_size
  615. )
  616. if not processed.images:
  617. # It broke, no further handling needed.
  618. return processed
  619. z_count = len(zs)
  620. # Set the grid infotexts to the real ones with extra_generation_params (1 main grid + z_count sub-grids)
  621. processed.infotexts[:1+z_count] = grid_infotext[:1+z_count]
  622. if not include_lone_images:
  623. # Don't need sub-images anymore, drop from list:
  624. processed.images = processed.images[:z_count+1]
  625. if opts.grid_save:
  626. # Auto-save main and sub-grids:
  627. grid_count = z_count + 1 if z_count > 1 else 1
  628. for g in range(grid_count):
  629. # TODO: See previous comment about intentional data misalignment.
  630. adj_g = g-1 if g > 0 else g
  631. images.save_image(processed.images[g], p.outpath_grids, "xyz_grid", info=processed.infotexts[g], extension=opts.grid_format, prompt=processed.all_prompts[adj_g], seed=processed.all_seeds[adj_g], grid=True, p=processed)
  632. if not include_sub_grids: # if not include_sub_grids then skip saving after the first grid
  633. break
  634. if not include_sub_grids:
  635. # Done with sub-grids, drop all related information:
  636. for _ in range(z_count):
  637. del processed.images[1]
  638. del processed.all_prompts[1]
  639. del processed.all_seeds[1]
  640. del processed.infotexts[1]
  641. return processed