ali_qwen_bot.py 9.3 KB

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  1. # encoding:utf-8
  2. import json
  3. import time
  4. from typing import List, Tuple
  5. import openai
  6. import broadscope_bailian
  7. from broadscope_bailian import ChatQaMessage
  8. from bot.bot import Bot
  9. from bot.ali.ali_qwen_session import AliQwenSession
  10. from bot.session_manager import SessionManager
  11. from bridge.context import ContextType
  12. from bridge.reply import Reply, ReplyType
  13. from common.log import logger
  14. from common import const
  15. from config import conf, load_config
  16. class AliQwenBot(Bot):
  17. def __init__(self):
  18. super().__init__()
  19. self.api_key_expired_time = self.set_api_key()
  20. self.sessions = SessionManager(AliQwenSession, model=conf().get("model", const.QWEN))
  21. def api_key_client(self):
  22. return broadscope_bailian.AccessTokenClient(access_key_id=self.access_key_id(), access_key_secret=self.access_key_secret())
  23. def access_key_id(self):
  24. return conf().get("qwen_access_key_id")
  25. def access_key_secret(self):
  26. return conf().get("qwen_access_key_secret")
  27. def agent_key(self):
  28. return conf().get("qwen_agent_key")
  29. def app_id(self):
  30. return conf().get("qwen_app_id")
  31. def node_id(self):
  32. return conf().get("qwen_node_id", "")
  33. def temperature(self):
  34. return conf().get("temperature", 0.2 )
  35. def top_p(self):
  36. return conf().get("top_p", 1)
  37. def reply(self, query, context=None):
  38. # acquire reply content
  39. if context.type == ContextType.TEXT:
  40. logger.info("[QWEN] query={}".format(query))
  41. session_id = context["session_id"]
  42. reply = None
  43. clear_memory_commands = conf().get("clear_memory_commands", ["#清除记忆"])
  44. if query in clear_memory_commands:
  45. self.sessions.clear_session(session_id)
  46. reply = Reply(ReplyType.INFO, "记忆已清除")
  47. elif query == "#清除所有":
  48. self.sessions.clear_all_session()
  49. reply = Reply(ReplyType.INFO, "所有人记忆已清除")
  50. elif query == "#更新配置":
  51. load_config()
  52. reply = Reply(ReplyType.INFO, "配置已更新")
  53. if reply:
  54. return reply
  55. session = self.sessions.session_query(query, session_id)
  56. logger.debug("[QWEN] session query={}".format(session.messages))
  57. reply_content = self.reply_text(session)
  58. logger.debug(
  59. "[QWEN] new_query={}, session_id={}, reply_cont={}, completion_tokens={}".format(
  60. session.messages,
  61. session_id,
  62. reply_content["content"],
  63. reply_content["completion_tokens"],
  64. )
  65. )
  66. if reply_content["completion_tokens"] == 0 and len(reply_content["content"]) > 0:
  67. reply = Reply(ReplyType.ERROR, reply_content["content"])
  68. elif reply_content["completion_tokens"] > 0:
  69. self.sessions.session_reply(reply_content["content"], session_id, reply_content["total_tokens"])
  70. reply = Reply(ReplyType.TEXT, reply_content["content"])
  71. else:
  72. reply = Reply(ReplyType.ERROR, reply_content["content"])
  73. logger.debug("[QWEN] reply {} used 0 tokens.".format(reply_content))
  74. return reply
  75. else:
  76. reply = Reply(ReplyType.ERROR, "Bot不支持处理{}类型的消息".format(context.type))
  77. return reply
  78. def reply_text(self, session: AliQwenSession, retry_count=0) -> dict:
  79. """
  80. call bailian's ChatCompletion to get the answer
  81. :param session: a conversation session
  82. :param retry_count: retry count
  83. :return: {}
  84. """
  85. try:
  86. prompt, history = self.convert_messages_format(session.messages)
  87. self.update_api_key_if_expired()
  88. # NOTE 阿里百炼的call()函数未提供temperature参数,考虑到temperature和top_p参数作用相同,取两者较小的值作为top_p参数传入,详情见文档 https://help.aliyun.com/document_detail/2587502.htm
  89. response = broadscope_bailian.Completions().call(app_id=self.app_id(), prompt=prompt, history=history, top_p=min(self.temperature(), self.top_p()))
  90. completion_content = self.get_completion_content(response, self.node_id())
  91. completion_tokens, total_tokens = self.calc_tokens(session.messages, completion_content)
  92. return {
  93. "total_tokens": total_tokens,
  94. "completion_tokens": completion_tokens,
  95. "content": completion_content,
  96. }
  97. except Exception as e:
  98. need_retry = retry_count < 2
  99. result = {"completion_tokens": 0, "content": "我现在有点累了,等会再来吧"}
  100. if isinstance(e, openai.RateLimitError):
  101. logger.warn("[QWEN] RateLimitError: {}".format(e))
  102. result["content"] = "提问太快啦,请休息一下再问我吧"
  103. if need_retry:
  104. time.sleep(20)
  105. elif isinstance(e, openai.Timeout):
  106. logger.warn("[QWEN] Timeout: {}".format(e))
  107. result["content"] = "我没有收到你的消息"
  108. if need_retry:
  109. time.sleep(5)
  110. elif isinstance(e, openai.APIError):
  111. logger.warn("[QWEN] Bad Gateway: {}".format(e))
  112. result["content"] = "请再问我一次"
  113. if need_retry:
  114. time.sleep(10)
  115. elif isinstance(e, openai.APIConnectionError):
  116. logger.warn("[QWEN] APIConnectionError: {}".format(e))
  117. need_retry = False
  118. result["content"] = "我连接不到你的网络"
  119. else:
  120. logger.exception("[QWEN] Exception: {}".format(e))
  121. need_retry = False
  122. self.sessions.clear_session(session.session_id)
  123. if need_retry:
  124. logger.warn("[QWEN] 第{}次重试".format(retry_count + 1))
  125. return self.reply_text(session, retry_count + 1)
  126. else:
  127. return result
  128. def set_api_key(self):
  129. api_key, expired_time = self.api_key_client().create_token(agent_key=self.agent_key())
  130. broadscope_bailian.api_key = api_key
  131. return expired_time
  132. def update_api_key_if_expired(self):
  133. if time.time() > self.api_key_expired_time:
  134. self.api_key_expired_time = self.set_api_key()
  135. def convert_messages_format(self, messages) -> Tuple[str, List[ChatQaMessage]]:
  136. history = []
  137. user_content = ''
  138. assistant_content = ''
  139. system_content = ''
  140. for message in messages:
  141. role = message.get('role')
  142. if role == 'user':
  143. user_content += message.get('content')
  144. elif role == 'assistant':
  145. assistant_content = message.get('content')
  146. history.append(ChatQaMessage(user_content, assistant_content))
  147. user_content = ''
  148. assistant_content = ''
  149. elif role =='system':
  150. system_content += message.get('content')
  151. if user_content == '':
  152. raise Exception('no user message')
  153. if system_content != '':
  154. # NOTE 模拟系统消息,测试发现人格描述以"你需要扮演ChatGPT"开头能够起作用,而以"你是ChatGPT"开头模型会直接否认
  155. system_qa = ChatQaMessage(system_content, '好的,我会严格按照你的设定回答问题')
  156. history.insert(0, system_qa)
  157. logger.debug("[QWEN] converted qa messages: {}".format([item.to_dict() for item in history]))
  158. logger.debug("[QWEN] user content as prompt: {}".format(user_content))
  159. return user_content, history
  160. def get_completion_content(self, response, node_id):
  161. if not response['Success']:
  162. return f"[ERROR]\n{response['Code']}:{response['Message']}"
  163. text = response['Data']['Text']
  164. if node_id == '':
  165. return text
  166. # TODO: 当使用流程编排创建大模型应用时,响应结构如下,最终结果在['finalResult'][node_id]['response']['text']中,暂时先这么写
  167. # {
  168. # 'Success': True,
  169. # 'Code': None,
  170. # 'Message': None,
  171. # 'Data': {
  172. # 'ResponseId': '9822f38dbacf4c9b8daf5ca03a2daf15',
  173. # 'SessionId': 'session_id',
  174. # 'Text': '{"finalResult":{"LLM_T7islK":{"params":{"modelId":"qwen-plus-v1","prompt":"${systemVars.query}${bizVars.Text}"},"response":{"text":"作为一个AI语言模型,我没有年龄,因为我没有生日。\n我只是一个程序,没有生命和身体。"}}}}',
  175. # 'Thoughts': [],
  176. # 'Debug': {},
  177. # 'DocReferences': []
  178. # },
  179. # 'RequestId': '8e11d31551ce4c3f83f49e6e0dd998b0',
  180. # 'Failed': None
  181. # }
  182. text_dict = json.loads(text)
  183. completion_content = text_dict['finalResult'][node_id]['response']['text']
  184. return completion_content
  185. def calc_tokens(self, messages, completion_content):
  186. completion_tokens = len(completion_content)
  187. prompt_tokens = 0
  188. for message in messages:
  189. prompt_tokens += len(message["content"])
  190. return completion_tokens, prompt_tokens + completion_tokens