WIP: saving the optimizing
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@ -29,7 +29,7 @@
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"automatic_player_status": true,
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"automatic_player_url": "http://127.0.0.1:6000",
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"liveRoom": {
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"enabled": true,
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"enabled": false,
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"url": ""
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},
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"record": {
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110
core/recorder.py
110
core/recorder.py
@ -16,8 +16,11 @@ import tempfile
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import wave
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from core import fay_core
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from core import interact
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import re
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# 启动时间 (秒)
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_ATTACK = 0.2
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_ATTACK = 0.05 # 更快进入拾音,减少短唤醒词被漏掉的概率
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# 释放时间 (秒)
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_RELEASE = 0.7
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@ -85,6 +88,31 @@ class Recorder:
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with fay_core.auto_play_lock:
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fay_core.can_auto_play = True
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def _norm_asr_text(self, s: str) -> str:
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"""
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大厅场景:ASR 结果常见问题
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- 句首有空格/标点/语气词(嗯、啊、这个...)
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- 唤醒词后跟逗号、冒号等
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所以需要做最小必要的规范化,避免 front 模式误判为“待唤醒”
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"""
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if not s:
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return ""
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s = s.strip()
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# 去掉句首标点/空白
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s = re.sub(r'^[\s,,。.!!?::、~~]+', '', s)
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# 去掉句首常见语气词(按需可继续加)
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s = re.sub(r'^(嗯|啊|呃|额|哦|唔|这个|那个)\s*', '', s)
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return s
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def _strip_wake_prefix(self, full_text: str, wake_word: str) -> str:
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"""
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去除前置唤醒词,只把“真正的问题”交给对话系统
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例如:'小F,播放音乐' -> '播放音乐'
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"""
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rest = full_text[len(wake_word):]
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# 吞掉唤醒词后的空白/标点
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return rest.lstrip(" \t,,。.!!?::、~~")
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def __waitingResult(self, iat: asrclient, audio_data):
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self.processing = True
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t = time.time()
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@ -142,33 +170,82 @@ class Recorder:
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self.timer = threading.Timer(60, self.reset_wakeup_status) # 重设计时器为60秒
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self.timer.start()
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#前置唤醒词模式
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# 前置唤醒词模式(大厅优化版)
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elif cfg.config['source']['wake_word_type'] == 'front':
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wake_word = cfg.config['source']['wake_word']
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wake_word_list = wake_word.split(',')
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wake_word_list = [w.strip() for w in wake_word.split(',') if w.strip()]
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raw_text = text
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text2 = self._norm_asr_text(raw_text)
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wake_up = False
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for word in wake_word_list:
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if text.startswith(word):
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wake_up_word = word
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matched_word = None
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# 1) 规范化后做“严格句首匹配”
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for w in wake_word_list:
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w2 = self._norm_asr_text(w)
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if w2 and text2.startswith(w2):
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wake_up = True
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matched_word = w2
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break
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# 2) 容错:允许唤醒词出现在句首很短范围内(防止语气词未完全清掉)
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# 注意:范围要小,避免大厅误唤醒
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if not wake_up:
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N = 4 # 建议 3~6,越大越容易误触发
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head = text2[:N]
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for w in wake_word_list:
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w2 = self._norm_asr_text(w)
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if w2 and w2 in head:
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wake_up = True
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matched_word = w2
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# 从唤醒词出现的位置截断,确保 strip 正确
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idx = text2.find(w2)
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text2 = text2[idx:]
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break
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if wake_up:
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util.printInfo(1, self.username, "唤醒成功!")
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util.printInfo(1, self.username, f"唤醒成功!(front:{matched_word})")
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if wsa_server.get_web_instance().is_connected(self.username):
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wsa_server.get_web_instance().add_cmd({"panelMsg": "唤醒成功!", "Username" : self.username , 'robot': f'http://{cfg.fay_url}:5000/robot/Listening.jpg'})
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wsa_server.get_web_instance().add_cmd({
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"panelMsg": "唤醒成功!",
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"Username": self.username,
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'robot': f'http://{cfg.fay_url}:5000/robot/Listening.jpg'
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})
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if wsa_server.get_instance().is_connected(self.username):
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content = {'Topic': 'Unreal', 'Data': {'Key': 'log', 'Value': "唤醒成功!"}, 'Username' : self.username, 'robot': f'http://{cfg.fay_url}:5000/robot/Listening.jpg'}
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content = {
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'Topic': 'Unreal',
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'Data': {'Key': 'log', 'Value': "唤醒成功!"},
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'Username': self.username,
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'robot': f'http://{cfg.fay_url}:5000/robot/Listening.jpg'
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}
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wsa_server.get_instance().add_cmd(content)
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#去除唤醒词后语句
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question = text#[len(wake_up_word):].lstrip()
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# ✅ 关键:剥离唤醒词,把真正问题交给对话系统
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question = self._strip_wake_prefix(text2, matched_word)
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# 如果只说了唤醒词(或后面太短),给一句提示
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if not question:
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question = "在呢,你说?"
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self.on_speaking(question)
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self.processing = False
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else:
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util.printInfo(1, self.username, "[!] 待唤醒!")
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# ✅ 关键:打印原始识别和规范化后文本,现场好定位为何没匹配上
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util.printInfo(1, self.username, f"[!] 待唤醒!(front) ASR='{raw_text}' norm='{text2}'")
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if wsa_server.get_web_instance().is_connected(self.username):
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wsa_server.get_web_instance().add_cmd({"panelMsg": "[!] 待唤醒!", "Username" : self.username , 'robot': f'http://{cfg.fay_url}:5000/robot/Normal.jpg'})
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wsa_server.get_web_instance().add_cmd({
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"panelMsg": "[!] 待唤醒!",
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"Username": self.username,
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'robot': f'http://{cfg.fay_url}:5000/robot/Normal.jpg'
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})
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if wsa_server.get_instance().is_connected(self.username):
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content = {'Topic': 'Unreal', 'Data': {'Key': 'log', 'Value': "[!] 待唤醒!"}, 'Username' : self.username, 'robot': f'http://{cfg.fay_url}:5000/robot/Normal.jpg'}
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content = {
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'Topic': 'Unreal',
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'Data': {'Key': 'log', 'Value': "[!] 待唤醒!"},
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'Username': self.username,
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'robot': f'http://{cfg.fay_url}:5000/robot/Normal.jpg'
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}
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wsa_server.get_instance().add_cmd(content)
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#非唤醒模式
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@ -234,7 +311,10 @@ class Recorder:
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#计算音量是否满足激活拾音
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level = audioop.rms(data, 2)
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if len(self.__history_data) >= 10:#保存激活前的音频,以免信息掉失
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# 把激活前缓存拉长,避免“唤醒词”在触发拾音前被漏掉
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# 1024帧@16kHz≈64ms/块,30块≈1.9秒
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if len(self.__history_data) >= 30: # 保存激活前的音频,以免信息掉失
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self.__history_data.pop(0)
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if len(self.__history_level) >= 500:
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self.__history_level.pop(0)
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@ -150,6 +150,19 @@ class FayInterface {
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handleIncomingMessage(data) {
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const vueInstance = this.vueInstance;
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if (data.panelReply !== undefined) {
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vueInstance.panelReply = data.panelReply.content;
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// 发送消息给父窗口,并指定目标 origin(必须是父组件的域名)
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if (window.parent) {
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window.parent.postMessage(
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{type: 'panelReply', data: data.panelReply.content},
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'*' // 父组件的域名
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);
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}
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}
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// console.log('Incoming message:', data);
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if (data.liveState !== undefined) {
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vueInstance.liveState = data.liveState;
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2
qa.csv
2
qa.csv
@ -1,4 +1,4 @@
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你好,你好,我是小橄榄!有什么我可以帮助你的吗
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你好,你好,我是小橄榄!有什么我可以帮助你的吗
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我们现在在哪里,我们现在在冕宁元升农业的展览厅,可以参观游览我们先进的油橄榄产业园区哦!
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介绍一下基地,元升集团油橄榄种植基地是中国目前最大的油橄榄种植庄园,目前整个庄园面积已接近30000亩。
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介绍一下元升集团,2011年,冕宁元升农业董事长林春福跟随周恩来总理的脚步,在冕宁地区开启了油橄榄庄园打造之路。经过十年的发展,冕宁元升农业目前已成为国家林业局示范基地、国家林业重点龙头企业、四川省第一种植庄园、四川省脱贫标杆企业,获得各种荣誉奖项200余项。
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#gpt 服务密钥(NLP多选1) https://openai.com/
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#免费key只支持gpt 3.5 ,若想使用其他model,可到 https://api.zyai.online/register/?aff_code=MyCI 下购买申请。
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gpt_api_key=sk-4Spva89SGSikpacz3a70Dd081cA84c9a8dEd345f19C9BdFc
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gpt_api_key=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
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#gpt base url 如:https://api.openai.com/v1、https://rwkv.ai-creator.net/chntuned/v1、https://api.fastgpt.in/api/v1、https://api.moonshot.cn/v1
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gpt_base_url=https://api.zyai.online/v1
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gpt_base_url=https://openrouter.ai/api/v1
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#gpt model engine 如:gpt-3.5-turbo、moonshot-v1-8k
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gpt_model_engine=gpt-3.5-turbo
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gpt_model_engine=qwen/qwen3-4b:free
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#gpt(fastgpt)代理(可为空,填写例子:127.0.0.1:7890)
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proxy_config=
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