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payload.py 9.3 KB

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  1. from open_webui.utils.task import prompt_template, prompt_variables_template
  2. from open_webui.utils.misc import (
  3. add_or_update_system_message,
  4. )
  5. from typing import Callable, Optional
  6. import json
  7. # inplace function: form_data is modified
  8. def apply_model_system_prompt_to_body(
  9. params: dict, form_data: dict, metadata: Optional[dict] = None, user=None
  10. ) -> dict:
  11. system = params.get("system", None)
  12. if not system:
  13. return form_data
  14. # Metadata (WebUI Usage)
  15. if metadata:
  16. variables = metadata.get("variables", {})
  17. if variables:
  18. system = prompt_variables_template(system, variables)
  19. # Legacy (API Usage)
  20. if user:
  21. template_params = {
  22. "user_name": user.name,
  23. "user_location": user.info.get("location") if user.info else None,
  24. }
  25. else:
  26. template_params = {}
  27. system = prompt_template(system, **template_params)
  28. form_data["messages"] = add_or_update_system_message(
  29. system, form_data.get("messages", [])
  30. )
  31. return form_data
  32. # inplace function: form_data is modified
  33. def apply_model_params_to_body(
  34. params: dict, form_data: dict, mappings: dict[str, Callable]
  35. ) -> dict:
  36. if not params:
  37. return form_data
  38. for key, cast_func in mappings.items():
  39. if (value := params.get(key)) is not None:
  40. form_data[key] = cast_func(value)
  41. return form_data
  42. # inplace function: form_data is modified
  43. def apply_model_params_to_body_openai(params: dict, form_data: dict) -> dict:
  44. mappings = {
  45. "temperature": float,
  46. "top_p": float,
  47. "max_tokens": int,
  48. "frequency_penalty": float,
  49. "reasoning_effort": str,
  50. "seed": lambda x: x,
  51. "stop": lambda x: [bytes(s, "utf-8").decode("unicode_escape") for s in x],
  52. "logit_bias": lambda x: x,
  53. "response_format": dict,
  54. }
  55. return apply_model_params_to_body(params, form_data, mappings)
  56. def apply_model_params_to_body_ollama(params: dict, form_data: dict) -> dict:
  57. # Convert OpenAI parameter names to Ollama parameter names if needed.
  58. name_differences = {
  59. "max_tokens": "num_predict",
  60. }
  61. for key, value in name_differences.items():
  62. if (param := params.get(key, None)) is not None:
  63. # Copy the parameter to new name then delete it, to prevent Ollama warning of invalid option provided
  64. params[value] = params[key]
  65. del params[key]
  66. # See https://github.com/ollama/ollama/blob/main/docs/api.md#request-8
  67. mappings = {
  68. "temperature": float,
  69. "top_p": float,
  70. "seed": lambda x: x,
  71. "mirostat": int,
  72. "mirostat_eta": float,
  73. "mirostat_tau": float,
  74. "num_ctx": int,
  75. "num_batch": int,
  76. "num_keep": int,
  77. "num_predict": int,
  78. "repeat_last_n": int,
  79. "top_k": int,
  80. "min_p": float,
  81. "typical_p": float,
  82. "repeat_penalty": float,
  83. "presence_penalty": float,
  84. "frequency_penalty": float,
  85. "penalize_newline": bool,
  86. "stop": lambda x: [bytes(s, "utf-8").decode("unicode_escape") for s in x],
  87. "numa": bool,
  88. "num_gpu": int,
  89. "main_gpu": int,
  90. "low_vram": bool,
  91. "vocab_only": bool,
  92. "use_mmap": bool,
  93. "use_mlock": bool,
  94. "num_thread": int,
  95. }
  96. # Extract keep_alive from options if it exists
  97. if "options" in form_data and "keep_alive" in form_data["options"]:
  98. form_data["keep_alive"] = form_data["options"]["keep_alive"]
  99. del form_data["options"]["keep_alive"]
  100. if "options" in form_data and "format" in form_data["options"]:
  101. form_data["format"] = form_data["options"]["format"]
  102. del form_data["options"]["format"]
  103. return apply_model_params_to_body(params, form_data, mappings)
  104. def convert_messages_openai_to_ollama(messages: list[dict]) -> list[dict]:
  105. ollama_messages = []
  106. for message in messages:
  107. # Initialize the new message structure with the role
  108. new_message = {"role": message["role"]}
  109. content = message.get("content", [])
  110. tool_calls = message.get("tool_calls", None)
  111. tool_call_id = message.get("tool_call_id", None)
  112. # Check if the content is a string (just a simple message)
  113. if isinstance(content, str) and not tool_calls:
  114. # If the content is a string, it's pure text
  115. new_message["content"] = content
  116. # If message is a tool call, add the tool call id to the message
  117. if tool_call_id:
  118. new_message["tool_call_id"] = tool_call_id
  119. elif tool_calls:
  120. # If tool calls are present, add them to the message
  121. ollama_tool_calls = []
  122. for tool_call in tool_calls:
  123. ollama_tool_call = {
  124. "index": tool_call.get("index", 0),
  125. "id": tool_call.get("id", None),
  126. "function": {
  127. "name": tool_call.get("function", {}).get("name", ""),
  128. "arguments": json.loads(
  129. tool_call.get("function", {}).get("arguments", {})
  130. ),
  131. },
  132. }
  133. ollama_tool_calls.append(ollama_tool_call)
  134. new_message["tool_calls"] = ollama_tool_calls
  135. # Put the content to empty string (Ollama requires an empty string for tool calls)
  136. new_message["content"] = ""
  137. else:
  138. # Otherwise, assume the content is a list of dicts, e.g., text followed by an image URL
  139. content_text = ""
  140. images = []
  141. # Iterate through the list of content items
  142. for item in content:
  143. # Check if it's a text type
  144. if item.get("type") == "text":
  145. content_text += item.get("text", "")
  146. # Check if it's an image URL type
  147. elif item.get("type") == "image_url":
  148. img_url = item.get("image_url", {}).get("url", "")
  149. if img_url:
  150. # If the image url starts with data:, it's a base64 image and should be trimmed
  151. if img_url.startswith("data:"):
  152. img_url = img_url.split(",")[-1]
  153. images.append(img_url)
  154. # Add content text (if any)
  155. if content_text:
  156. new_message["content"] = content_text.strip()
  157. # Add images (if any)
  158. if images:
  159. new_message["images"] = images
  160. # Append the new formatted message to the result
  161. ollama_messages.append(new_message)
  162. return ollama_messages
  163. def convert_payload_openai_to_ollama(openai_payload: dict) -> dict:
  164. """
  165. Converts a payload formatted for OpenAI's API to be compatible with Ollama's API endpoint for chat completions.
  166. Args:
  167. openai_payload (dict): The payload originally designed for OpenAI API usage.
  168. Returns:
  169. dict: A modified payload compatible with the Ollama API.
  170. """
  171. ollama_payload = {}
  172. # Mapping basic model and message details
  173. ollama_payload["model"] = openai_payload.get("model")
  174. ollama_payload["messages"] = convert_messages_openai_to_ollama(
  175. openai_payload.get("messages")
  176. )
  177. ollama_payload["stream"] = openai_payload.get("stream", False)
  178. if "tools" in openai_payload:
  179. ollama_payload["tools"] = openai_payload["tools"]
  180. if "format" in openai_payload:
  181. ollama_payload["format"] = openai_payload["format"]
  182. # If there are advanced parameters in the payload, format them in Ollama's options field
  183. if openai_payload.get("options"):
  184. ollama_payload["options"] = openai_payload["options"]
  185. ollama_options = openai_payload["options"]
  186. # Re-Mapping OpenAI's `max_tokens` -> Ollama's `num_predict`
  187. if "max_tokens" in ollama_options:
  188. ollama_options["num_predict"] = ollama_options["max_tokens"]
  189. del ollama_options[
  190. "max_tokens"
  191. ] # To prevent Ollama warning of invalid option provided
  192. # Ollama lacks a "system" prompt option. It has to be provided as a direct parameter, so we copy it down.
  193. if "system" in ollama_options:
  194. ollama_payload["system"] = ollama_options["system"]
  195. del ollama_options[
  196. "system"
  197. ] # To prevent Ollama warning of invalid option provided
  198. # Extract keep_alive from options if it exists
  199. if "keep_alive" in ollama_options:
  200. ollama_payload["keep_alive"] = ollama_options["keep_alive"]
  201. del ollama_options["keep_alive"]
  202. # If there is the "stop" parameter in the openai_payload, remap it to the ollama_payload.options
  203. if "stop" in openai_payload:
  204. ollama_options = ollama_payload.get("options", {})
  205. ollama_options["stop"] = openai_payload.get("stop")
  206. ollama_payload["options"] = ollama_options
  207. if "metadata" in openai_payload:
  208. ollama_payload["metadata"] = openai_payload["metadata"]
  209. if "response_format" in openai_payload:
  210. response_format = openai_payload["response_format"]
  211. format_type = response_format.get("type", None)
  212. schema = response_format.get(format_type, None)
  213. if schema:
  214. format = schema.get("schema", None)
  215. ollama_payload["format"] = format
  216. return ollama_payload