This commit is contained in:
mcn1630
2025-11-27 16:30:22 +08:00
parent 4af6a5ec0c
commit abfc808859
9 changed files with 142 additions and 1539 deletions

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@@ -4,13 +4,17 @@
""" """
import base64 import base64
import random
from collections.abc import Callable from collections.abc import Callable
from pathlib import Path from pathlib import Path
from io import BytesIO
from PIL import Image
import aiofiles import aiofiles
import aiohttp import aiohttp
from src.common.logger import get_logger from src.common.logger import get_logger
from src.plugin_system.apis import llm_api, config_api
logger = get_logger("MaiZone.ImageService") logger = get_logger("MaiZone.ImageService")
@@ -38,7 +42,7 @@ class ImageService:
try: try:
enable_ai_image = bool(self.get_config("send.enable_ai_image", False)) enable_ai_image = bool(self.get_config("send.enable_ai_image", False))
api_key = str(self.get_config("models.siliconflow_apikey", "")) api_key = str(self.get_config("models.siliconflow_apikey", ""))
image_dir = str(self.get_config("send.image_directory", "./data/plugins/maizone_refactored/images")) image_dir = str(self.get_config("send.image_directory", "./data/plugins/maizon_refactored/images"))
image_num_raw = self.get_config("send.ai_image_number", 1) image_num_raw = self.get_config("send.ai_image_number", 1)
image_num = int(image_num_raw if image_num_raw is not None else 1) image_num = int(image_num_raw if image_num_raw is not None else 1)
@@ -52,49 +56,165 @@ class ImageService:
# 确保图片目录存在 # 确保图片目录存在
Path(image_dir).mkdir(parents=True, exist_ok=True) Path(image_dir).mkdir(parents=True, exist_ok=True)
# 生成图片提示词
image_prompt = await self._generate_image_prompt(story)
if not image_prompt:
logger.error("生成图片提示词失败")
return False
logger.info(f"正在为说说生成 {image_num} 张AI配图...") logger.info(f"正在为说说生成 {image_num} 张AI配图...")
return await self._call_siliconflow_api(api_key, story, image_dir, image_num) return await self._call_siliconflow_api(api_key, image_prompt, image_dir, image_num)
except Exception as e: except Exception as e:
logger.error(f"处理AI配图时发生异常: {e}") logger.error(f"处理AI配图时发生异常: {e}")
return False return False
async def _call_siliconflow_api(self, api_key: str, story: str, image_dir: str, batch_size: int) -> bool: async def _generate_image_prompt(self, story_content: str) -> str:
"""
使用LLM生成图片提示词基于说说内容。
:param story_content: 说说内容
:return: 生成的图片提示词,失败时返回空字符串
"""
try:
# 获取配置
identity = config_api.get_global_config("identity", "年龄为19岁,是女孩子,身高为160cm,黑色短发")
enable_ref = bool(self.get_config("models.image_ref", True))
# 构建提示词
prompt = f"""
请根据以下QQ空间说说内容配图并构建生成配图的风格和prompt。
说说主人信息:'{identity}'
说说内容:'{story_content}'
请注意仅回复用于生成图片的prompt不要输出多余内容(包括前后缀,冒号和引号,括号()表情包at或 @等 )。
"""
if enable_ref:
prompt += "说说主人的人设参考图片将随同提示词一起发送给生图AI可使用'in the style of''根据图中人物'等描述引导生成风格"
# 获取模型配置
models = llm_api.get_available_models()
prompt_model = self.get_config("models.text_model", "replyer")
model_config = models.get(prompt_model)
if not model_config:
logger.error(f"找不到模型配置: {prompt_model}")
return ""
# 调用LLM生成提示词
logger.info("正在生成图片提示词...")
success, image_prompt, reasoning, model_name = await llm_api.generate_with_model(
prompt=prompt,
model_config=model_config,
request_type="story.generate",
temperature=0.3,
max_tokens=1000
)
if success:
logger.info(f'成功生成图片提示词: {image_prompt}')
return image_prompt
else:
logger.error('生成图片提示词失败')
return ""
except Exception as e:
logger.error(f"生成图片提示词时发生异常: {e}")
return ""
async def _call_siliconflow_api(self, api_key: str, image_prompt: str, image_dir: str, batch_size: int) -> bool:
""" """
调用硅基流动SiliconFlow的API来生成图片。 调用硅基流动SiliconFlow的API来生成图片。
:param api_key: SiliconFlow API密钥。 :param api_key: SiliconFlow API密钥。
:param story: 用于生成图片的文本内容(说说) :param image_prompt: 用于生成图片的提示词
:param image_dir: 图片保存目录。 :param image_dir: 图片保存目录。
:param batch_size: 生成图片的数量。 :param batch_size: 生成图片的数量。
:return: API调用是否成功。 :return: API调用是否成功。
""" """
url = "https://api.siliconflow.cn/v1/images/generations" url = "https://api.siliconflow.cn/v1/images/generations"
headers = { headers = {
"accept": "application/json", "Authorization": f"Bearer {api_key}",
"authorization": f"Bearer {api_key}", "Content-Type": "application/json"
"content-type": "application/json",
} }
payload = {"prompt": story, "n": batch_size, "response_format": "b64_json", "style": "cinematic-default"} data = {
"model": "Kwai-Kolors/Kolors",
"prompt": image_prompt,
"negative_prompt": "lowres, bad anatomy, bad hands, text, error, cropped, worst quality, low quality, "
"normal quality, jpeg artifacts, signature, watermark, username, blurry",
"seed": random.randint(1, 9999999999),
"batch_size": batch_size,
}
# 检查是否启用参考图片
enable_ref = bool(self.get_config("models.image_ref", True))
if enable_ref:
# 修复使用Path对象正确获取父目录
parent_dir = Path(image_dir).parent
ref_images = list(parent_dir.glob("done_ref.*"))
if ref_images:
try:
image = Image.open(ref_images[0])
encoded_image = self._encode_image_to_base64(image)
data["image"] = encoded_image
logger.info("已添加参考图片到生成参数")
except Exception as e:
logger.warning(f"加载参考图片失败: {e}")
try: try:
async with aiohttp.ClientSession() as session: async with aiohttp.ClientSession() as session:
async with session.post(url, json=payload, headers=headers) as response: # 发送生成请求
if response.status == 200: async with session.post(url, json=data, headers=headers) as response:
data = await response.json() if response.status != 200:
for i, img_data in enumerate(data.get("data", [])):
b64_json = img_data.get("b64_json")
if b64_json:
image_bytes = base64.b64decode(b64_json)
file_path = Path(image_dir) / f"image_{i + 1}.png"
async with aiofiles.open(file_path, "wb") as f:
await f.write(image_bytes)
logger.info(f"成功保存AI图片到: {file_path}")
return True
else:
error_text = await response.text() error_text = await response.text()
logger.error(f"AI生图API请求失败状态码: {response.status}, 错误信息: {error_text}") logger.error(f'生成图片出错,错误码[{response.status}]')
logger.error(f'错误响应: {error_text}')
return False return False
json_data = await response.json()
image_urls = [img["url"] for img in json_data["images"]]
# 下载并保存图片
for i, img_url in enumerate(image_urls):
try:
# 下载图片
async with session.get(img_url) as img_response:
img_response.raise_for_status()
img_data = await img_response.read()
# 处理图片
image = Image.open(BytesIO(img_data))
# 保存图片
filename = f"image_{i}.png"
save_path = Path(image_dir) / filename
image.save(save_path)
logger.info(f"图片已保存至: {save_path}")
except Exception as e:
logger.error(f"下载图片失败: {str(e)}")
return False
return True
except Exception as e: except Exception as e:
logger.error(f"调用AI生图API时发生异常: {e}") logger.error(f"调用AI生图API时发生异常: {e}")
return False return False
def _encode_image_to_base64(self, img: Image.Image) -> str:
"""
将PIL.Image对象编码为base64 data URL
:param img: PIL图片对象
:return: base64 data URL字符串
"""
try:
img_format = (img.format or "PNG").upper()
buffer = BytesIO()
img.save(buffer, format=img_format)
byte_data = buffer.getvalue()
mime_type = f"image/{img_format.lower()}"
encoded_string = base64.b64encode(byte_data).decode("utf-8")
return f"data:{mime_type};base64,{encoded_string}"
except Exception as e:
logger.error(f"编码图片为base64失败: {e}")
return ""

View File

@@ -1,661 +0,0 @@
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<https://www.gnu.org/licenses/>.

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@@ -1,82 +0,0 @@
# GPT-SoVITS 语音合成插件(多风格版)
## 简介
本插件基于 GPT-SoVITS实现文本转语音TTS功能支持多种语音风格和多语言中文/英文/日文)。适用于需要将文本内容以语音形式发送的场景,如语音回复、朗读长文本、增强表达效果等。
(此版本适用于麦麦09x版)
## 功能特性
- 支持多种语音风格(如默认、温柔等,可自定义扩展)
- 支持多语言自动检测与指定zh/en/ja
- 可配置参考音频、参考文本、模型权重等参数
- 兼容多种聊天平台(如 QQ、Telegram 等)
- 关键词激活,灵活触发
## 安装与配置
1. **拷贝插件文件夹**到你的插件目录下(如 `plugins/tts_voice_plugin/`)。
2. **配置 `config.toml`**,参考下方配置示例:
```toml
[plugin]
enabled = true
config_version = "1.0.0"
[tts]
timeout = 30
max_text_length = 500
server = "http://127.0.0.1:9880"
[tts_styles.default]
refer_wav = ""
prompt_text = ""
prompt_language = "zh"
gpt_weights = ""
sovits_weights = ""
[tts_styles.gentle]
refer_wav = ""
prompt_text = ""
prompt_language = "zh"
gpt_weights = ""
sovits_weights = ""
```
- `server`TTS 服务后端地址(需部署 GPT-SoVITS 服务)
- `tts_styles`:可自定义多种风格,每种风格可配置不同参考音频、文本、模型权重等
## 使用方法
- 在聊天中输入关键词如“语音”、“说话”、“朗读”、“voice”、“tts”等即可触发语音合成功能
- 可通过参数指定风格、语言、参考音频等
- 支持自动检测文本语言
## 主要参数说明
| 参数名 | 说明 |
|------------------|----------------------------|
| text | 要转换为语音的文本内容 |
| text_language | 文本语言zh/en/ja |
| refer_wav_path | 参考音频路径(可选) |
| prompt_text | 参考音频文本(可选) |
| prompt_language | 参考音频语言(可选) |
| voice_style | 语音风格(如 default/gentle|
## 扩展风格
如需添加新风格,在 `config.toml``[tts_styles]` 下增加分组即可。例如:
```toml
[tts_styles."活泼"]
refer_wav = "path/to/lively.wav"
prompt_text = "活泼的语气"
prompt_language = "zh"
gpt_weights = ""
sovits_weights = ""
```
## 依赖
- Python 3.7+
- aiohttp
- GPT-SoVITS 服务端
## 作者
- 插件作者:靓仔
- 插件版本1.0.0
## License
AGPL-3.0

View File

@@ -1,18 +0,0 @@
from src.plugin_system.base.plugin_metadata import PluginMetadata
__plugin_meta__ = PluginMetadata(
name="GPT-SoVITS 语音合成插件",
description="基于 GPT-SoVITS 的文本转语音插件,支持多种语言和多风格语音合成。",
usage=" ",
version="2.0.0",
author="靓仔",
license="AGPL-v3.0",
repository_url="https://github.com/xuqian13/tts_voice_plugin",
keywords=["tts", "语音合成", "文本转语音", "gpt-sovits", "语音", "朗读", "多风格", "语音播报"],
categories=["Utility", "Communication", "Accessibility"],
extra={
"is_built_in": False,
"plugin_type": "tools",
},
python_dependencies = ["aiohttp", "soundfile", "pedalboard"]
)

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@@ -1,205 +0,0 @@
"""
TTS 语音合成 Action
"""
from pathlib import Path
from typing import ClassVar
import toml
from src.chat.utils.self_voice_cache import register_self_voice
from src.common.logger import get_logger
from src.plugin_system.base.base_action import BaseAction, ChatMode
from ..services.manager import get_service
logger = get_logger("tts_voice_plugin.action")
def _get_available_styles() -> list[str]:
"""动态读取配置文件获取所有可用的TTS风格名称"""
try:
# 这个路径构建逻辑是为了确保无论从哪里启动,都能准确定位到配置文件
plugin_file = Path(__file__).resolve()
# Bot/src/plugins/built_in/tts_voice_plugin/actions -> Bot
bot_root = plugin_file.parent.parent.parent.parent.parent.parent
config_file = bot_root / "config" / "plugins" / "tts_voice_plugin" / "config.toml"
if not config_file.is_file():
logger.warning("在 tts_action 中未找到 tts_voice_plugin 的配置文件,无法动态加载风格列表。")
return ["default"]
config = toml.loads(config_file.read_text(encoding="utf-8"))
styles_config = config.get("tts_styles", [])
if not isinstance(styles_config, list):
return ["default"]
# 使用显式循环和类型检查来提取 style_name以确保 Pylance 类型检查通过
style_names: list[str] = []
for style in styles_config:
if isinstance(style, dict):
name = style.get("style_name")
# 确保 name 是一个非空字符串
if isinstance(name, str) and name:
style_names.append(name)
return style_names if style_names else ["default"]
except Exception as e:
logger.error(f"动态加载TTS风格列表时出错: {e}")
return ["default"] # 出现任何错误都回退
# 在类定义之前执行函数,获取风格列表
AVAILABLE_STYLES = _get_available_styles()
STYLE_OPTIONS_DESC = ", ".join(f"'{s}'" for s in AVAILABLE_STYLES)
class TTSVoiceAction(BaseAction):
"""
通过关键词或规划器自动触发 TTS 语音合成
"""
action_name = "tts_voice_action"
action_description = "将你生成好的文本转换为语音并发送。你必须提供要转换的文本。"
mode_enable = ChatMode.ALL
parallel_action = False
action_parameters: ClassVar[dict] = {
"tts_voice_text": {
"type": "string",
"description": "需要转换为语音并发送的完整、自然、适合口语的文本内容。",
"required": True
},
"voice_style": {
"type": "string",
"description": f"语音的风格。可用选项: [{STYLE_OPTIONS_DESC}]。请根据对话的情感和上下文选择一个最合适的风格。如果未提供,将使用默认风格。",
"required": False
},
"text_language": {
"type": "string",
"description": (
"指定用于合成的语言模式,请务必根据文本内容选择最精确、范围最小的选项以获得最佳效果。"
"可用选项说明:\n"
"- 'zh': 中文与英文混合 (最优选)\n"
"- 'ja': 日文与英文混合 (最优选)\n"
"- 'yue': 粤语与英文混合 (最优选)\n"
"- 'ko': 韩文与英文混合 (最优选)\n"
"- 'en': 纯英文\n"
"- 'all_zh': 纯中文\n"
"- 'all_ja': 纯日文\n"
"- 'all_yue': 纯粤语\n"
"- 'all_ko': 纯韩文\n"
"- 'auto': 多语种混合自动识别 (备用选项,当前两种语言时优先使用上面的精确选项)\n"
"- 'auto_yue': 多语种混合自动识别(包含粤语)(备用选项)"
),
"required": False
}
}
action_require: ClassVar[list] = [
"在调用此动作时,你必须在 'text' 参数中提供要合成语音的完整回复内容。这是强制性的。",
"当用户明确请求使用语音进行回复时,例如‘发个语音听听’、‘用语音说’等。",
"当对话内容适合用语音表达,例如讲故事、念诗、撒嬌或进行角色扮演时。",
"在表达特殊情感(如安慰、鼓励、庆祝)的场景下,可以主动使用语音来增强感染力。",
"不要在日常的、简短的问答或闲聊中频繁使用语音,避免打扰用户。",
"提供的 'text' 内容必须是纯粹的对话,不能包含任何括号或方括号括起来的动作、表情、或场景描述(例如,不要出现 '(笑)''[歪头]'",
"**重要**:此动作专为语音合成设计,因此 'text' 参数的内容必须是纯净、标准的口语文本。请务必抑制你通常的、富有表现力的文本风格,不要使用任何辅助聊天或增强视觉效果的特殊符号(例如 '', '', '', '' 等),因为它们无法被正确合成为语音。",
"【**最终规则**】'text' 参数中,所有句子和停顿【必须】使用且只能使用以下四个标准标点符号:'' (逗号)、'' (句号)、'' (问号)、'' (叹号)。任何其他符号,特别是 '...''' 以及任何表情符号或装饰性符号,都【严禁】出现,否则将导致语音合成严重失败。"
]
def __init__(self, *args, **kwargs):
super().__init__(*args, **kwargs)
# 关键配置项现在由 TTSService 管理
self.tts_service = get_service("tts")
async def go_activate(self, llm_judge_model=None) -> bool:
"""
判断此 Action 是否应该被激活。
满足以下任一条件即可激活:
1. 55% 的随机概率
2. 匹配到预设的关键词
3. LLM 判断当前场景适合发送语音
"""
# 条件1: 随机激活
if await self._random_activation(0.25):
logger.info(f"{self.log_prefix} 随机激活成功 (25%)")
return True
# 条件2: 关键词激活
keywords = [
"发语音", "语音", "说句话", "用语音说", "听你", "听声音", "想你", "想听声音",
"讲个话", "说段话", "念一下", "读一下", "用嘴说", "", "能发语音吗", "亲口"
]
if await self._keyword_match(keywords):
logger.info(f"{self.log_prefix} 关键词激活成功")
return True
# 条件3: LLM 判断激活
# 注意:这里我们复用 action_require 里的描述,让 LLM 的判断更精准
if await self._llm_judge_activation(
llm_judge_model=llm_judge_model
):
logger.info(f"{self.log_prefix} LLM 判断激活成功")
return True
logger.debug(f"{self.log_prefix} 所有激活条件均未满足,不激活")
return False
async def execute(self) -> tuple[bool, str]:
"""
执行 Action 的核心逻辑
"""
try:
if not self.tts_service:
logger.error(f"{self.log_prefix} TTSService 未注册或初始化失败,静默处理。")
return False, "TTSService 未注册或初始化失败"
initial_text = self.action_data.get("tts_voice_text", "").strip()
voice_style = self.action_data.get("voice_style", "default")
# 新增:从决策模型获取指定的语言模式
text_language = self.action_data.get("text_language") # 如果模型没给,就是 None
logger.info(f"{self.log_prefix} 接收到规划器初步文本: '{initial_text[:70]}...', 指定风格: {voice_style}, 指定语言: {text_language}")
# 1. 使用规划器提供的文本
text = initial_text
if not text:
logger.warning(f"{self.log_prefix} 规划器提供的文本为空,静默处理。")
return False, "规划器提供的文本为空"
# 2. 调用 TTSService 生成语音
logger.info(f"{self.log_prefix} 使用最终文本进行语音合成: '{text[:70]}...'")
audio_b64 = await self.tts_service.generate_voice(
text=text,
style_hint=voice_style,
language_hint=text_language # 新增:将决策模型指定的语言传递给服务
)
if audio_b64:
# 在发送语音前,将文本注册到缓存中
register_self_voice(audio_b64, text)
await self.send_custom(message_type="voice", content=audio_b64)
logger.info(f"{self.log_prefix} GPT-SoVITS语音发送成功")
await self.store_action_info(
action_prompt_display=f"将文本转换为语音并发送 (风格:{voice_style})",
action_done=True
)
return True, f"成功生成并发送语音,文本长度: {len(text)}字符"
else:
logger.error(f"{self.log_prefix} TTS服务未能返回音频数据静默处理。")
await self.store_action_info(
action_prompt_display="语音合成失败: TTS服务未能返回音频数据",
action_done=False
)
return False, "语音合成失败"
except Exception as e:
logger.error(f"{self.log_prefix} 语音合成过程中发生未知错误: {e!s}")
await self.store_action_info(
action_prompt_display=f"语音合成失败: {e!s}",
action_done=False
)
return False, f"语音合成出错: {e!s}"

View File

@@ -1,76 +0,0 @@
"""
TTS 语音合成命令
"""
from typing import ClassVar
from src.common.logger import get_logger
from src.plugin_system.base.command_args import CommandArgs
from src.plugin_system.base.plus_command import PlusCommand
from src.plugin_system.utils.permission_decorators import require_permission
from ..services.manager import get_service
logger = get_logger("tts_voice_plugin.command")
class TTSVoiceCommand(PlusCommand):
"""
通过命令手动触发 TTS 语音合成
"""
command_name: str = "tts"
command_description: str = "使用GPT-SoVITS将文本转换为语音并发送"
command_aliases: ClassVar[list[str]] = ["语音合成", ""]
command_usage = "/tts <要说的文本> [风格]"
def __init__(self, *args, **kwargs):
super().__init__(*args, **kwargs)
@require_permission("plugin.tts_voice_plugin.command.use")
async def execute(self, args: CommandArgs) -> tuple[bool, str, bool]:
"""
执行命令的核心逻辑
"""
all_args = args.get_args()
if not all_args:
await self.send_text("请提供要转换为语音的文本内容哦!")
return False, "缺少文本参数", True
try:
tts_service = get_service("tts")
if not tts_service:
raise RuntimeError("TTSService 未注册或初始化失败")
# 获取可用风格列表
available_styles = tts_service.tts_styles.keys()
text_to_speak = ""
style_hint = "default"
# 检查最后一个参数是否是有效的风格
if len(all_args) > 1 and all_args[-1] in available_styles:
style_hint = all_args[-1]
text_to_speak = " ".join(all_args[:-1])
else:
# 如果最后一个参数不是风格,则全部都是文本
text_to_speak = " ".join(all_args)
# 保持默认风格,让 service 层决定是否需要情感分析
style_hint = "default"
if not text_to_speak:
await self.send_text("请提供要转换为语音的文本内容哦!")
return False, "文本内容为空", True
audio_b64 = await tts_service.generate_voice(text_to_speak, style_hint)
if audio_b64:
await self.send_type(message_type="voice", content=audio_b64)
return True, "语音发送成功", True
else:
await self.send_text("❌ 语音合成失败,请检查服务状态或配置。")
return False, "语音合成失败", True
except Exception as e:
logger.error(f"执行 /tts 命令时出错: {e}")
await self.send_text("❌ 语音合成时发生了意想不到的错误,请查看日志。")
return False, "命令执行异常", True

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@@ -1,112 +0,0 @@
"""
TTS Voice 插件 - 重构版
"""
from pathlib import Path
from typing import Any, ClassVar
import toml
from src.common.logger import get_logger
from src.plugin_system import BasePlugin, ComponentInfo, register_plugin
from src.plugin_system.base.component_types import PermissionNodeField
from .actions.tts_action import TTSVoiceAction
from .commands.tts_command import TTSVoiceCommand
from .services.manager import register_service
from .services.tts_service import TTSService
logger = get_logger("tts_voice_plugin")
@register_plugin
class TTSVoicePlugin(BasePlugin):
"""
GPT-SoVITS 语音合成插件 - 重构版
"""
plugin_name = "tts_voice_plugin"
plugin_description = "基于GPT-SoVITS的文本转语音插件重构版"
plugin_version = "3.1.2"
plugin_author = "Kilo Code & 靚仔"
enable_plugin = True
config_file_name = "config.toml"
dependencies: ClassVar[list[str]] = []
permission_nodes: ClassVar[list[PermissionNodeField]] = [
PermissionNodeField(node_name="command.use", description="是否可以使用 /tts 命令"),
]
config_schema: ClassVar[dict] = {}
config_section_descriptions: ClassVar[dict] = {
"plugin": "插件基本配置",
"components": "组件启用控制",
"tts": "TTS语音合成基础配置",
"tts_advanced": "TTS高级参数配置语速、采样、批处理等",
"tts_styles": "TTS风格参数配置每个分组为一种风格"
}
def __init__(self, *args, **kwargs):
super().__init__(*args, **kwargs)
self.tts_service = None
def _get_config_wrapper(self, key: str, default: Any = None) -> Any:
"""
配置获取的包装器,用于解决 get_config 无法直接获取动态表(如 tts_styles和未在 schema 中定义的节的问题。
由于插件系统的 schema 为空时不会加载未定义的键,这里手动读取配置文件以获取所需配置。
"""
# 需要手动加载的顶级配置节
manual_load_keys = ["tts_styles", "spatial_effects", "tts_advanced", "tts"]
top_key = key.split(".")[0]
if top_key in manual_load_keys:
try:
plugin_file = Path(__file__).resolve()
bot_root = plugin_file.parent.parent.parent.parent.parent
config_file = bot_root / "config" / "plugins" / self.plugin_name / self.config_file_name
if not config_file.is_file():
logger.error(f"TTS config file not found at robustly constructed path: {config_file}")
return default
full_config = toml.loads(config_file.read_text(encoding="utf-8"))
# 支持点状路径访问
value = full_config
for k in key.split("."):
if isinstance(value, dict):
value = value.get(k)
else:
return default
return value if value is not None else default
except Exception as e:
logger.error(f"Failed to manually load '{key}' from config: {e}")
return default
return self.get_config(key, default)
async def on_plugin_loaded(self):
"""
插件加载完成后的回调,初始化并注册服务。
"""
logger.info("初始化 TTSVoicePlugin...")
# 实例化 TTSService并传入 get_config 方法
self.tts_service = TTSService(self._get_config_wrapper)
# 注册服务
register_service("tts", self.tts_service)
logger.info("TTSService 已成功初始化并注册。")
def get_plugin_components(self) -> list[tuple[ComponentInfo, type]]:
"""
返回插件包含的组件列表。
"""
components = []
if self.get_config("components.action_enabled", True):
components.append((TTSVoiceAction.get_action_info(), TTSVoiceAction))
if self.get_config("components.command_enabled", True):
components.append((TTSVoiceCommand.get_plus_command_info(), TTSVoiceCommand))
return components

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@@ -1,19 +0,0 @@
"""
服务管理器
用于注册和获取插件内部使用的服务实例。
"""
from typing import Any
_services: dict[str, Any] = {}
def register_service(name: str, instance: Any) -> None:
"""注册一个服务实例"""
_services[name] = instance
def get_service(name: str) -> Any:
"""获取一个已注册的服务实例"""
return _services.get(name)

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@@ -1,344 +0,0 @@
"""
TTS 核心服务
"""
import asyncio
import base64
import io
import os
import re
from collections.abc import Callable
from typing import Any
import aiohttp
import soundfile as sf
from pedalboard import Convolution, Pedalboard, Reverb
from pedalboard.io import AudioFile
from src.common.logger import get_logger
logger = get_logger("tts_voice_plugin.service")
class TTSService:
"""封装了TTS合成的核心逻辑"""
def __init__(self, get_config_func: Callable[[str, Any], Any]):
self.get_config = get_config_func
self.tts_styles: dict[str, Any] = {}
self.timeout: int = 60
self.max_text_length: int = 500
self._load_config()
def _load_config(self) -> None:
"""加载插件配置"""
try:
self.timeout = self.get_config("tts.timeout", 60)
self.max_text_length = self.get_config("tts.max_text_length", 500)
self.tts_styles = self._load_tts_styles()
if self.tts_styles:
logger.info(f"TTS服务已成功加载风格: {list(self.tts_styles.keys())}")
else:
logger.warning("TTS风格配置为空请检查配置文件")
except Exception as e:
logger.error(f"TTS服务配置加载失败: {e}")
def _load_tts_styles(self) -> dict[str, dict[str, Any]]:
"""加载 TTS 风格配置"""
styles = {}
global_server = self.get_config("tts.server", "http://127.0.0.1:9880")
tts_styles_config = self.get_config("tts_styles", [])
if not isinstance(tts_styles_config, list):
logger.error(f"tts_styles 配置不是一个列表, 而是 {type(tts_styles_config)}")
return styles
default_cfg = next((s for s in tts_styles_config if s.get("style_name") == "default"), None)
if not default_cfg:
logger.error("在 tts_styles 配置中未找到 'default' 风格,这是必需的。")
return styles
default_refer_wav = default_cfg.get("refer_wav_path", "")
default_prompt_text = default_cfg.get("prompt_text", "")
default_gpt_weights = default_cfg.get("gpt_weights", "")
default_sovits_weights = default_cfg.get("sovits_weights", "")
if not default_refer_wav:
logger.warning("TTS 'default' style is missing 'refer_wav_path'.")
for style_cfg in tts_styles_config:
if not isinstance(style_cfg, dict):
continue
style_name = style_cfg.get("style_name")
if not style_name:
continue
styles[style_name] = {
"url": global_server,
"name": style_cfg.get("name", style_name),
"refer_wav_path": style_cfg.get("refer_wav_path", default_refer_wav),
"prompt_text": style_cfg.get("prompt_text", default_prompt_text),
"prompt_language": style_cfg.get("prompt_language", "zh"),
"gpt_weights": style_cfg.get("gpt_weights", default_gpt_weights),
"sovits_weights": style_cfg.get("sovits_weights", default_sovits_weights),
"speed_factor": style_cfg.get("speed_factor"),
"text_language": style_cfg.get("text_language", "auto"), # 新增:读取文本语言模式
}
return styles
def _determine_final_language(self, text: str, mode: str) -> str:
"""根据配置的语言策略和文本内容决定最终发送给API的语言代码"""
# 如果策略是具体的语言(如 all_zh, ja直接使用
if mode not in ["auto", "auto_yue"]:
return mode
# 对于 auto 和 auto_yue 策略,进行内容检测
# 优先检测粤语
if mode == "auto_yue":
cantonese_keywords = ["", "", "", "", "", "", "", "", ""]
if any(keyword in text for keyword in cantonese_keywords):
logger.info("在 auto_yue 模式下检测到粤语关键词,最终语言: yue")
return "yue"
# 检测日语(简单启发式规则)
japanese_chars = len(re.findall(r"[\u3040-\u309f\u30a0-\u30ff]", text))
if japanese_chars > 5 and japanese_chars > len(re.findall(r"[\u4e00-\u9fff]", text)) * 0.5:
logger.info("检测到日语字符,最终语言: ja")
return "ja"
# 默认回退到中文
logger.info(f"{mode} 模式下未检测到特定语言,默认回退到: zh")
return "zh"
def _clean_text_for_tts(self, text: str) -> str:
# 1. 基本清理
text = re.sub(r"[\(\[【].*?[\)\]】]", "", text)
text = re.sub(r"([,。!?、;:,.!?;:~\-`])\1+", r"\1", text)
text = re.sub(r"~{2,}|{2,}", "", text)
text = re.sub(r"\.{3,}|…{1,}", "", text)
# 2. 词语替换
replacements = {"www": "哈哈哈", "hhh": "哈哈", "233": "哈哈", "666": "厉害", "88": "拜拜"}
for old, new in replacements.items():
text = text.replace(old, new)
# 3. 移除不必要的字符 (恢复使用更安全的原版正则,避免误删)
text = re.sub(r"[^\u4e00-\u9fff\u3040-\u309f\u30a0-\u30ffa-zA-Z0-9\s,.!?;:~]", "", text)
# 4. 确保结尾有标点
if text and not text.endswith(tuple(",。!?、;:,.!?;:")):
text += ""
# 5. 智能截断 (保留改进的截断逻辑)
if len(text) > self.max_text_length:
cut_text = text[:self.max_text_length]
punctuation = "。!?.…"
last_punc_pos = max(cut_text.rfind(p) for p in punctuation)
if last_punc_pos != -1:
text = cut_text[:last_punc_pos + 1]
else:
last_comma_pos = max(cut_text.rfind(p) for p in ",、;,;")
if last_comma_pos != -1:
text = cut_text[:last_comma_pos + 1]
else:
text = cut_text
return text.strip()
async def _call_tts_api(self, server_config: dict, text: str, text_language: str, **kwargs) -> bytes | None:
"""
最终修复版:先切换模型,然后仅通过路径发送合成请求。
"""
ref_wav_path = kwargs.get("refer_wav_path")
if not ref_wav_path:
logger.error(f"API 调用失败:缺少 refer_wav_path。当前风格配置: {server_config}")
return None
try:
base_url = server_config["url"].rstrip("/")
# --- 步骤一:像稳定版一样,先切换模型 ---
async def switch_model_weights(weights_path: str | None, weight_type: str):
if not weights_path:
return
api_endpoint = f"/set_{weight_type}_weights"
switch_url = f"{base_url}{api_endpoint}"
try:
async with aiohttp.ClientSession(timeout=aiohttp.ClientTimeout(total=self.timeout)) as session:
async with session.get(switch_url, params={"weights_path": weights_path}) as resp:
if resp.status != 200:
error_text = await resp.text()
logger.error(f"切换 {weight_type} 模型失败: {resp.status} - {error_text}")
else:
logger.info(f"成功切换 {weight_type} 模型为: {weights_path}")
except Exception as e:
logger.error(f"请求切换 {weight_type} 模型时发生网络异常: {e}")
await switch_model_weights(kwargs.get("gpt_weights"), "gpt")
await switch_model_weights(kwargs.get("sovits_weights"), "sovits")
# --- 步骤二构建纯净的、不含Base64的请求数据 ---
data = {
"text": text,
"text_lang": text_language,
"ref_audio_path": ref_wav_path,
"prompt_text": kwargs.get("prompt_text", ""),
"prompt_lang": kwargs.get("prompt_language", "zh"),
# 在稳定版中这两个参数是通过API切换的而不是直接放在请求体里
# "gpt_model_path": kwargs.get("gpt_weights"),
# "sovits_model_path": kwargs.get("sovits_weights"),
}
# 合并高级配置
advanced_config = self.get_config("tts_advanced", {})
if isinstance(advanced_config, dict):
data.update({k: v for k, v in advanced_config.items() if v is not None})
# 优先使用风格特定的语速
if server_config.get("speed_factor") is not None:
data["speed_factor"] = server_config["speed_factor"]
# --- 步骤三:发送最终的合成请求 ---
tts_url = base_url if base_url.endswith("/tts") else f"{base_url}/tts"
logger.info(f"发送到 TTS API 的数据: {data}")
async with aiohttp.ClientSession() as session:
async with session.post(tts_url, json=data, timeout=aiohttp.ClientTimeout(total=self.timeout)) as response:
if response.status == 200:
return await response.read()
else:
error_info = await response.text()
logger.error(f"TTS API调用失败: {response.status} - {error_info}")
return None
except asyncio.TimeoutError:
logger.error("TTS服务请求超时")
return None
except Exception as e:
logger.error(f"TTS API调用异常: {e}")
return None
async def _apply_spatial_audio_effect(self, audio_data: bytes) -> bytes | None:
"""根据配置应用空间效果(混响和卷积)"""
try:
effects_config = self.get_config("spatial_effects", {})
if not effects_config.get("enabled", False):
return audio_data
# 获取插件目录和IR文件路径
# 基于 __file__ 构建稳健的、独立于当前工作目录的路径
plugin_file = os.path.abspath(__file__)
# services -> tts_voice_plugin -> plugins -> Bot
bot_root = os.path.dirname(os.path.dirname(os.path.dirname(os.path.dirname(plugin_file))))
ir_path = os.path.join(bot_root, "assets", "small_room_ir.wav")
effects = []
# 根据配置添加Reverb效果
if effects_config.get("reverb_enabled", False):
effects.append(Reverb(
room_size=effects_config.get("room_size", 0.15),
damping=effects_config.get("damping", 0.5),
wet_level=effects_config.get("wet_level", 0.33),
dry_level=effects_config.get("dry_level", 0.4),
width=effects_config.get("width", 1.0)
))
# 根据配置添加Convolution效果
if effects_config.get("convolution_enabled", False) and os.path.exists(ir_path):
effects.append(Convolution(
impulse_response_filename=ir_path,
mix=effects_config.get("convolution_mix", 0.5)
))
elif effects_config.get("convolution_enabled"):
logger.warning(f"卷积混响已启用但IR文件不存在 ({ir_path}),跳过该效果。")
if not effects:
return audio_data
# 将原始音频数据加载到内存中的 AudioFile 对象
with io.BytesIO(audio_data) as audio_stream:
with AudioFile(audio_stream, "r") as f:
board = Pedalboard(effects)
effected = board(f.read(f.frames), f.samplerate)
# 将处理后的音频数据写回内存中的字节流
with io.BytesIO() as output_stream:
# 使用 soundfile 写入,因为它更稳定
sf.write(output_stream, effected.T, f.samplerate, format="WAV")
processed_audio_data = output_stream.getvalue()
logger.info("成功应用空间效果。")
return processed_audio_data
except Exception as e:
logger.error(f"应用空间效果时出错: {e}")
return audio_data # 如果出错,返回原始音频
async def generate_voice(self, text: str, style_hint: str = "default", language_hint: str | None = None) -> str | None:
self._load_config()
if not self.tts_styles:
logger.error("TTS风格配置为空无法生成语音。")
return None
style = style_hint if style_hint in self.tts_styles else "default"
if style not in self.tts_styles:
if "default" in self.tts_styles:
style = "default"
logger.warning(f"指定风格 '{style_hint}' 不存在,自动回退到: 'default'")
elif self.tts_styles:
style = next(iter(self.tts_styles))
logger.warning(f"指定风格 '{style_hint}''default' 均不存在,自动回退到第一个可用风格: {style}")
else:
logger.error("没有任何可用的TTS风格配置")
return None
server_config = self.tts_styles[style]
clean_text = self._clean_text_for_tts(text)
if not clean_text:
return None
# 语言决策流程:
# 1. 优先使用决策模型直接指定的 language_hint (最高优先级)
if language_hint:
final_language = language_hint
logger.info(f"使用决策模型指定的语言: {final_language}")
else:
# 2. 如果模型未指定,则使用风格配置的 language_policy
language_policy = server_config.get("text_language", "auto")
final_language = self._determine_final_language(clean_text, language_policy)
logger.info(f"决策模型未指定语言,使用策略 '{language_policy}' -> 最终语言: {final_language}")
logger.info(f"开始TTS语音合成文本{clean_text[:50]}..., 风格:{style}, 最终语言: {final_language}")
audio_data = await self._call_tts_api(
server_config=server_config, text=clean_text, text_language=final_language,
refer_wav_path=server_config.get("refer_wav_path"),
prompt_text=server_config.get("prompt_text"),
prompt_language=server_config.get("prompt_language"),
gpt_weights=server_config.get("gpt_weights"),
sovits_weights=server_config.get("sovits_weights"),
)
if audio_data:
# 检查是否启用空间音频效果
spatial_config = self.get_config("spatial_effects", {})
if spatial_config.get("enabled", False):
logger.info("检测到已启用空间音频效果,开始处理...")
processed_audio = await self._apply_spatial_audio_effect(audio_data)
if processed_audio:
logger.info("空间音频效果应用成功!")
audio_data = processed_audio
else:
logger.warning("空间音频效果应用失败,将使用原始音频。")
return base64.b64encode(audio_data).decode("utf-8")
return None