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  1. # encoding:utf-8
  2. from bot.bot import Bot
  3. from bot.openai.open_ai_image import OpenAIImage
  4. from bridge.context import ContextType
  5. from bridge.reply import Reply, ReplyType
  6. from config import conf
  7. from common.log import logger
  8. import openai
  9. import time
  10. user_session = dict()
  11. # OpenAI对话模型API (可用)
  12. class OpenAIBot(Bot, OpenAIImage):
  13. def __init__(self):
  14. super().__init__()
  15. openai.api_key = conf().get('open_ai_api_key')
  16. if conf().get('open_ai_api_base'):
  17. openai.api_base = conf().get('open_ai_api_base')
  18. proxy = conf().get('proxy')
  19. if proxy:
  20. openai.proxy = proxy
  21. def reply(self, query, context=None):
  22. # acquire reply content
  23. if context and context.type:
  24. if context.type == ContextType.TEXT:
  25. logger.info("[OPEN_AI] query={}".format(query))
  26. from_user_id = context['session_id']
  27. reply = None
  28. if query == '#清除记忆':
  29. Session.clear_session(from_user_id)
  30. reply = Reply(ReplyType.INFO, '记忆已清除')
  31. elif query == '#清除所有':
  32. Session.clear_all_session()
  33. reply = Reply(ReplyType.INFO, '所有人记忆已清除')
  34. else:
  35. new_query = Session.build_session_query(query, from_user_id)
  36. logger.debug("[OPEN_AI] session query={}".format(new_query))
  37. reply_content = self.reply_text(new_query, from_user_id, 0)
  38. logger.debug("[OPEN_AI] new_query={}, user={}, reply_cont={}".format(new_query, from_user_id, reply_content))
  39. if reply_content and query:
  40. Session.save_session(query, reply_content, from_user_id)
  41. reply = Reply(ReplyType.TEXT, reply_content)
  42. return reply
  43. elif context.type == ContextType.IMAGE_CREATE:
  44. ok, retstring = self.create_img(query, 0)
  45. reply = None
  46. if ok:
  47. reply = Reply(ReplyType.IMAGE_URL, retstring)
  48. else:
  49. reply = Reply(ReplyType.ERROR, retstring)
  50. return reply
  51. def reply_text(self, query, user_id, retry_count=0):
  52. try:
  53. response = openai.Completion.create(
  54. model= conf().get("model") or "text-davinci-003", # 对话模型的名称
  55. prompt=query,
  56. temperature=0.9, # 值在[0,1]之间,越大表示回复越具有不确定性
  57. max_tokens=1200, # 回复最大的字符数
  58. top_p=1,
  59. frequency_penalty=0.0, # [-2,2]之间,该值越大则更倾向于产生不同的内容
  60. presence_penalty=0.0, # [-2,2]之间,该值越大则更倾向于产生不同的内容
  61. stop=["\n\n\n"]
  62. )
  63. res_content = response.choices[0]['text'].strip().replace('<|endoftext|>', '')
  64. logger.info("[OPEN_AI] reply={}".format(res_content))
  65. return res_content
  66. except openai.error.RateLimitError as e:
  67. # rate limit exception
  68. logger.warn(e)
  69. if retry_count < 1:
  70. time.sleep(5)
  71. logger.warn("[OPEN_AI] RateLimit exceed, 第{}次重试".format(retry_count+1))
  72. return self.reply_text(query, user_id, retry_count+1)
  73. else:
  74. return "提问太快啦,请休息一下再问我吧"
  75. except Exception as e:
  76. # unknown exception
  77. logger.exception(e)
  78. Session.clear_session(user_id)
  79. return "请再问我一次吧"
  80. class Session(object):
  81. @staticmethod
  82. def build_session_query(query, user_id):
  83. '''
  84. build query with conversation history
  85. e.g. Q: xxx
  86. A: xxx
  87. Q: xxx
  88. :param query: query content
  89. :param user_id: from user id
  90. :return: query content with conversaction
  91. '''
  92. prompt = conf().get("character_desc", "")
  93. if prompt:
  94. prompt += "<|endoftext|>\n\n\n"
  95. session = user_session.get(user_id, None)
  96. if session:
  97. for conversation in session:
  98. prompt += "Q: " + conversation["question"] + "\n\n\nA: " + conversation["answer"] + "<|endoftext|>\n"
  99. prompt += "Q: " + query + "\nA: "
  100. return prompt
  101. else:
  102. return prompt + "Q: " + query + "\nA: "
  103. @staticmethod
  104. def save_session(query, answer, user_id):
  105. max_tokens = conf().get("conversation_max_tokens")
  106. if not max_tokens:
  107. # default 3000
  108. max_tokens = 1000
  109. conversation = dict()
  110. conversation["question"] = query
  111. conversation["answer"] = answer
  112. session = user_session.get(user_id)
  113. logger.debug(conversation)
  114. logger.debug(session)
  115. if session:
  116. # append conversation
  117. session.append(conversation)
  118. else:
  119. # create session
  120. queue = list()
  121. queue.append(conversation)
  122. user_session[user_id] = queue
  123. # discard exceed limit conversation
  124. Session.discard_exceed_conversation(user_session[user_id], max_tokens)
  125. @staticmethod
  126. def discard_exceed_conversation(session, max_tokens):
  127. count = 0
  128. count_list = list()
  129. for i in range(len(session)-1, -1, -1):
  130. # count tokens of conversation list
  131. history_conv = session[i]
  132. count += len(history_conv["question"]) + len(history_conv["answer"])
  133. count_list.append(count)
  134. for c in count_list:
  135. if c > max_tokens:
  136. # pop first conversation
  137. session.pop(0)
  138. @staticmethod
  139. def clear_session(user_id):
  140. user_session[user_id] = []
  141. @staticmethod
  142. def clear_all_session():
  143. user_session.clear()