pipeline_arguments.py 11 KB

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  1. # copyright (c) 2024 PaddlePaddle Authors. All Rights Reserve.
  2. #
  3. # Licensed under the Apache License, Version 2.0 (the "License");
  4. # you may not use this file except in compliance with the License.
  5. # You may obtain a copy of the License at
  6. #
  7. # http://www.apache.org/licenses/LICENSE-2.0
  8. #
  9. # Unless required by applicable law or agreed to in writing, software
  10. # distributed under the License is distributed on an "AS IS" BASIS,
  11. # WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  12. # See the License for the specific language governing permissions and
  13. # limitations under the License.
  14. from ast import literal_eval
  15. from pydantic import TypeAdapter, ValidationError
  16. from functools import wraps
  17. from typing import Dict, List, Tuple, Union, Literal, Optional
  18. def custom_type(cli_expected_type):
  19. """Create validator for CLI input conversion and type checking"""
  20. def validator(cli_input: str) -> cli_expected_type:
  21. try:
  22. parsed = literal_eval(cli_input)
  23. except (ValueError, SyntaxError, TypeError, MemoryError, RecursionError) as exc:
  24. err = f"""Malformed input:
  25. - Input: {cli_input!r}
  26. - Error: {exc}"""
  27. raise ValueError(err) from exc
  28. try:
  29. return TypeAdapter(cli_expected_type).validate_python(parsed)
  30. except ValidationError as exc:
  31. err = f"""Invalid input type:
  32. - Expected: {cli_expected_type}
  33. - Received: {cli_input!r}
  34. """
  35. raise ValueError(err) from exc
  36. return validator
  37. PIPELINE_ARGUMENTS = {
  38. "OCR": [
  39. {
  40. "name": "--use_doc_orientation_classify",
  41. "type": bool,
  42. "help": "Determines whether to use document orientation classification",
  43. },
  44. {
  45. "name": "--use_doc_unwarping",
  46. "type": bool,
  47. "help": "Determines whether to use document unwarping",
  48. },
  49. {
  50. "name": "--use_textline_orientation",
  51. "type": bool,
  52. "help": "Determines whether to consider text line orientation",
  53. },
  54. {
  55. "name": "--text_det_limit_side_len",
  56. "type": int,
  57. "help": "Sets the side length limit for text detection.",
  58. },
  59. {
  60. "name": "--text_det_limit_type",
  61. "type": str,
  62. "help": "Sets the limit type for text detection.",
  63. },
  64. {
  65. "name": "--text_det_thresh",
  66. "type": float,
  67. "help": "Sets the threshold for text detection.",
  68. },
  69. {
  70. "name": "--text_det_box_thresh",
  71. "type": float,
  72. "help": "Sets the box threshold for text detection.",
  73. },
  74. {
  75. "name": "--text_det_unclip_ratio",
  76. "type": float,
  77. "help": "Sets the unclip ratio for text detection.",
  78. },
  79. {
  80. "name": "--text_rec_score_thresh",
  81. "type": float,
  82. "help": "Sets the score threshold for text recognition.",
  83. },
  84. ],
  85. "object_detection": [
  86. {
  87. "name": "--threshold",
  88. "type": custom_type(Optional[Union[float, dict[int, float]]]),
  89. "help": "Sets the threshold for object detection.",
  90. },
  91. ],
  92. "image_classification": [
  93. {
  94. "name": "--topk",
  95. "type": int,
  96. "help": "Sets the Top-K value for image classification.",
  97. },
  98. ],
  99. "image_multilabel_classification": [
  100. {
  101. "name": "--threshold",
  102. "type": float,
  103. "help": "Sets the threshold for image multilabel classification.",
  104. },
  105. ],
  106. "pedestrian_attribute_recognition": [
  107. {
  108. "name": "--det_threshold",
  109. "type": float,
  110. "help": "Sets the threshold for human detection.",
  111. },
  112. {
  113. "name": "--cls_threshold",
  114. "type": float,
  115. "help": "Sets the threshold for pedestrian attribute recognition.",
  116. },
  117. ],
  118. "vehicle_attribute_recognition": [
  119. {
  120. "name": "--det_threshold",
  121. "type": float,
  122. "help": "Sets the threshold for vehicle detection.",
  123. },
  124. {
  125. "name": "--cls_threshold",
  126. "type": float,
  127. "help": "Sets the threshold for vehicle attribute recognition.",
  128. },
  129. ],
  130. "human_keypoint_detection": [
  131. {
  132. "name": "--det_threshold",
  133. "type": custom_type(Optional[float]),
  134. "help": "Sets the threshold for human detection.",
  135. },
  136. ],
  137. "table_recognition": None,
  138. "layout_parsing": None,
  139. "seal_recognition": [
  140. {
  141. "name": "--use_doc_orientation_classify",
  142. "type": bool,
  143. "help": "Determines whether to use document preprocessing",
  144. },
  145. {
  146. "name": "--use_doc_unwarping",
  147. "type": bool,
  148. "help": "Determines whether to use document unwarping",
  149. },
  150. {
  151. "name": "--use_layout_detection",
  152. "type": bool,
  153. "help": "Determines whether to use document layout detection",
  154. },
  155. {
  156. "name": "--layout_threshold",
  157. "type": float,
  158. "help": "Determines confidence threshold for layout detection",
  159. },
  160. {
  161. "name": "--layout_nms",
  162. "type": bool,
  163. "help": "Determines whether to use non maximum suppression",
  164. },
  165. {
  166. "name": "--layout_unclip_ratio",
  167. "type": float,
  168. "help": "Determines unclip ratio for layout detection boxes",
  169. },
  170. {
  171. "name": "--layout_merge_bboxes_mode",
  172. "type": str,
  173. "help": "Determines merge mode for layout detection bboxes, 'union', 'large' or 'small'",
  174. },
  175. {
  176. "name": "--seal_det_limit_side_len",
  177. "type": int,
  178. "help": "Sets the side length limit for text detection.",
  179. },
  180. {
  181. "name": "--seal_det_limit_type",
  182. "type": str,
  183. "help": "Sets the limit type for text detection, 'min', 'max'.",
  184. },
  185. {
  186. "name": "--seal_det_thresh",
  187. "type": float,
  188. "help": "Sets the threshold for text detection.",
  189. },
  190. {
  191. "name": "--seal_det_box_thresh",
  192. "type": float,
  193. "help": "Sets the box threshold for text detection.",
  194. },
  195. {
  196. "name": "--seal_det_unclip_ratio",
  197. "type": float,
  198. "help": "Sets the unclip ratio for text detection.",
  199. },
  200. {
  201. "name": "--seal_rec_score_thresh",
  202. "type": float,
  203. "help": "Sets the score threshold for text recognition.",
  204. },
  205. ],
  206. "ts_forecast": None,
  207. "ts_anomaly_detection": None,
  208. "ts_classification": None,
  209. "formula_recognition": [
  210. {
  211. "name": "--use_layout_detection",
  212. "type": bool,
  213. "help": "Determines whether to use layout detection",
  214. },
  215. {
  216. "name": "--use_doc_orientation_classify",
  217. "type": bool,
  218. "help": "Determines whether to use document orientation classification",
  219. },
  220. {
  221. "name": "--use_doc_unwarping",
  222. "type": bool,
  223. "help": "Determines whether to use document unwarping",
  224. },
  225. {
  226. "name": "--layout_threshold",
  227. "type": float,
  228. "help": "Sets the layout threshold for layout detection.",
  229. },
  230. {
  231. "name": "--layout_nms",
  232. "type": bool,
  233. "help": "Determines whether to use layout nms",
  234. },
  235. {
  236. "name": "--layout_unclip_ratio",
  237. "type": float,
  238. "help": "Sets the layout unclip ratio for layout detection.",
  239. },
  240. {
  241. "name": "--layout_merge_bboxes_mode",
  242. "type": str,
  243. "help": "Sets the layout merge bboxes mode for layout detection.",
  244. },
  245. ],
  246. "instance_segmentation": [
  247. {
  248. "name": "--threshold",
  249. "type": custom_type(Optional[float]),
  250. "help": "Sets the threshold for instance segmentation.",
  251. },
  252. ],
  253. "semantic_segmentation": [
  254. {
  255. "name": "--target_size",
  256. "type": custom_type(Optional[Union[int, Tuple[int, int], Literal[-1]]]),
  257. "help": "Sets the inference image resolution for semantic segmentation.",
  258. },
  259. ],
  260. "small_object_detection": [
  261. {
  262. "name": "--threshold",
  263. "type": custom_type(Optional[Union[float, dict[int, float]]]),
  264. "help": "Sets the threshold for small object detection.",
  265. },
  266. ],
  267. "anomaly_detection": None,
  268. "video_classification": [
  269. {
  270. "name": "--topk",
  271. "type": int,
  272. "help": "Sets the Top-K value for video classification.",
  273. },
  274. ],
  275. "video_detection": [
  276. {
  277. "name": "--nms_thresh",
  278. "type": float,
  279. "help": "Sets the NMS threshold for video detection.",
  280. },
  281. {
  282. "name": "--score_thresh",
  283. "type": float,
  284. "help": "Sets the confidence threshold for video detection.",
  285. },
  286. ],
  287. "doc_preprocessor": [
  288. {
  289. "name": "--use_doc_orientation_classify",
  290. "type": bool,
  291. "help": "Determines whether to use document orientation classification.",
  292. },
  293. {
  294. "name": "--use_doc_unwarping",
  295. "type": bool,
  296. "help": "Determines whether to use document unwarping.",
  297. },
  298. ],
  299. "rotated_object_detection": [
  300. {
  301. "name": "--threshold",
  302. "type": custom_type(Optional[Union[float, dict[int, float]]]),
  303. "help": "Sets the threshold for rotated object detection.",
  304. },
  305. ],
  306. "open_vocabulary_detection": [
  307. {
  308. "name": "--thresholds",
  309. "type": custom_type(dict[str, float]),
  310. "help": "Sets the thresholds for open vocabulary detection.",
  311. },
  312. {
  313. "name": "--prompt",
  314. "type": str,
  315. "help": "Sets the prompt for open vocabulary detection.",
  316. },
  317. ],
  318. "open_vocabulary_segmentation": [
  319. {
  320. "name": "--prompt_type",
  321. "type": str,
  322. "help": "Sets the prompt type for open vocabulary segmentation.",
  323. },
  324. {
  325. "name": "--prompt",
  326. "type": custom_type(list[list[float]]),
  327. "help": "Sets the prompt for open vocabulary segmentation.",
  328. },
  329. ],
  330. }