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# encoding:utf-8 |
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import time |
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import openai |
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import openai.error |
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from bot.bot import Bot |
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from bot.zhipuai.zhipu_ai_session import ZhipuAISession |
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from bot.zhipuai.zhipu_ai_image import ZhipuAIImage |
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from bot.session_manager import SessionManager |
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from bridge.context import ContextType |
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from bridge.reply import Reply, ReplyType |
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from common.log import logger |
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from config import conf, load_config |
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from zhipuai import ZhipuAI |
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# ZhipuAI对话模型API |
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class ZHIPUAIBot(Bot, ZhipuAIImage): |
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def __init__(self): |
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super().__init__() |
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self.sessions = SessionManager(ZhipuAISession, model=conf().get("model") or "ZHIPU_AI") |
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self.args = { |
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"model": "glm-4", # 对话模型的名称,可选择 glm-3.5-turbo |
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"temperature": conf().get("temperature", 0.9), # 值在(0,1)之间(智谱AI 的温度不能取 0 或者 1) |
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"top_p": conf().get("top_p", 0.7), |
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} |
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self.client = ZhipuAI(api_key=conf().get("zhipu_ai_api_key")) |
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def reply(self, query, context=None): |
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# acquire reply content |
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if context.type == ContextType.TEXT: |
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logger.info("[ZHIPU_AI] query={}".format(query)) |
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session_id = context["session_id"] |
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reply = None |
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clear_memory_commands = conf().get("clear_memory_commands", ["#清除记忆"]) |
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if query in clear_memory_commands: |
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self.sessions.clear_session(session_id) |
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reply = Reply(ReplyType.INFO, "记忆已清除") |
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elif query == "#清除所有": |
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self.sessions.clear_all_session() |
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reply = Reply(ReplyType.INFO, "所有人记忆已清除") |
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elif query == "#更新配置": |
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load_config() |
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reply = Reply(ReplyType.INFO, "配置已更新") |
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if reply: |
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return reply |
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session = self.sessions.session_query(query, session_id) |
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logger.debug("[ZHIPU_AI] session query={}".format(session.messages)) |
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api_key = context.get("openai_api_key") or openai.api_key |
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model = context.get("gpt_model") |
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new_args = None |
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if model: |
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new_args = self.args.copy() |
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new_args["model"] = model |
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# if context.get('stream'): |
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# # reply in stream |
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# return self.reply_text_stream(query, new_query, session_id) |
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reply_content = self.reply_text(session, api_key, args=new_args) |
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logger.debug( |
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"[ZHIPU_AI] new_query={}, session_id={}, reply_cont={}, completion_tokens={}".format( |
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session.messages, |
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session_id, |
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reply_content["content"], |
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reply_content["completion_tokens"], |
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) |
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) |
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if reply_content["completion_tokens"] == 0 and len(reply_content["content"]) > 0: |
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reply = Reply(ReplyType.ERROR, reply_content["content"]) |
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elif reply_content["completion_tokens"] > 0: |
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self.sessions.session_reply(reply_content["content"], session_id, reply_content["total_tokens"]) |
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reply = Reply(ReplyType.TEXT, reply_content["content"]) |
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else: |
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reply = Reply(ReplyType.ERROR, reply_content["content"]) |
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logger.debug("[ZHIPU_AI] reply {} used 0 tokens.".format(reply_content)) |
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return reply |
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elif context.type == ContextType.IMAGE_CREATE: |
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ok, retstring = self.create_img(query, 0) |
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reply = None |
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if ok: |
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reply = Reply(ReplyType.IMAGE_URL, retstring) |
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else: |
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reply = Reply(ReplyType.ERROR, retstring) |
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return reply |
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else: |
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reply = Reply(ReplyType.ERROR, "Bot不支持处理{}类型的消息".format(context.type)) |
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return reply |
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def reply_text(self, session: ZhipuAISession, api_key=None, args=None, retry_count=0) -> dict: |
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""" |
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call openai's ChatCompletion to get the answer |
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:param session: a conversation session |
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:param session_id: session id |
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:param retry_count: retry count |
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:return: {} |
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""" |
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try: |
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# if conf().get("rate_limit_chatgpt") and not self.tb4chatgpt.get_token(): |
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# raise openai.error.RateLimitError("RateLimitError: rate limit exceeded") |
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# if api_key == None, the default openai.api_key will be used |
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if args is None: |
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args = self.args |
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# response = openai.ChatCompletion.create(api_key=api_key, messages=session.messages, **args) |
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response = self.client.chat.completions.create(messages=session.messages, **args) |
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# logger.debug("[ZHIPU_AI] response={}".format(response)) |
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# logger.info("[ZHIPU_AI] reply={}, total_tokens={}".format(response.choices[0]['message']['content'], response["usage"]["total_tokens"])) |
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return { |
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"total_tokens": response.usage.total_tokens, |
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"completion_tokens": response.usage.completion_tokens, |
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"content": response.choices[0].message.content, |
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} |
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except Exception as e: |
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need_retry = retry_count < 2 |
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result = {"completion_tokens": 0, "content": "我现在有点累了,等会再来吧"} |
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if isinstance(e, openai.error.RateLimitError): |
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logger.warn("[ZHIPU_AI] RateLimitError: {}".format(e)) |
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result["content"] = "提问太快啦,请休息一下再问我吧" |
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if need_retry: |
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time.sleep(20) |
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elif isinstance(e, openai.error.Timeout): |
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logger.warn("[ZHIPU_AI] Timeout: {}".format(e)) |
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result["content"] = "我没有收到你的消息" |
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if need_retry: |
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time.sleep(5) |
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elif isinstance(e, openai.error.APIError): |
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logger.warn("[ZHIPU_AI] Bad Gateway: {}".format(e)) |
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result["content"] = "请再问我一次" |
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if need_retry: |
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time.sleep(10) |
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elif isinstance(e, openai.error.APIConnectionError): |
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logger.warn("[ZHIPU_AI] APIConnectionError: {}".format(e)) |
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result["content"] = "我连接不到你的网络" |
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if need_retry: |
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time.sleep(5) |
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else: |
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logger.exception("[ZHIPU_AI] Exception: {}".format(e), e) |
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need_retry = False |
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self.sessions.clear_session(session.session_id) |
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if need_retry: |
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logger.warn("[ZHIPU_AI] 第{}次重试".format(retry_count + 1)) |
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return self.reply_text(session, api_key, args, retry_count + 1) |
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else: |
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return result |