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opendan/src/service/aios_shell/aios_shell.py
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# aiso shell like bash for linux
import asyncio
import sys
import os
import logging
import re
import toml
import shlex
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from logging.handlers import RotatingFileHandler
from typing import Any, Optional, TypeVar, Tuple, Sequence
import argparse
from prompt_toolkit import HTML, PromptSession, prompt,print_formatted_text
from prompt_toolkit.formatted_text import FormattedText
from prompt_toolkit.selection import SelectionState
from prompt_toolkit.history import FileHistory
from prompt_toolkit.auto_suggest import AutoSuggestFromHistory
from prompt_toolkit.completion import WordCompleter
from prompt_toolkit.styles import Style
directory = os.path.dirname(__file__)
sys.path.append(directory + '/../../')
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import proxy
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from aios_kernel import *
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from knowledge import *
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sys.path.append(directory + '/../../component/')
from agent_manager import AgentManager
from workflow_manager import WorkflowManager
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from knowledge_manager import KnowledgePipelineManager
logger = logging.getLogger(__name__)
shell_style = Style.from_dict({
'title': '#87d7ff bold', #RGB
'content': '#007f00', # resp content
'prompt': '#00FF00',
'error': '#8F0000 bold'
})
class AIOS_Shell:
def __init__(self,username:str) -> None:
self.username = username
self.current_target = "_"
self.current_topic = "default"
self.is_working = True
def declare_all_user_config(self):
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user_data_dir = AIStorage.get_instance().get_myai_dir()
contact_config_path =os.path.abspath(f"{user_data_dir}/contacts.toml")
cm = ContactManager.get_instance(contact_config_path)
cm.load_data()
user_config = AIStorage.get_instance().get_user_config()
user_config.add_user_config("username","username is your full name when using AIOS",False,None)
user_config.add_user_config("telegram","Your telgram username",False,None)
user_config.add_user_config("email","Your email",False,None)
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user_config.add_user_config("feature.llama","enable Local-llama feature",True,"False")
user_config.add_user_config("feature.aigc","enable AIGC feature",True,"False")
openai_node = OpenAI_ComputeNode.get_instance()
openai_node.declare_user_config()
user_config.add_user_config("shell.current","last opened target and topic",True,"default@Jarvis")
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proxy.declare_user_config()
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google_text_to_speech = GoogleTextToSpeechNode.get_instance()
google_text_to_speech.declare_user_config()
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Local_Stability_ComputeNode.declare_user_config()
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#Stability_ComputeNode.declare_user_config()
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async def _handle_no_target_msg(self,bus:AIBus,target_id:str) -> bool:
agent : AIAgent = await AgentManager.get_instance().get(target_id)
if agent is not None:
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bus.register_message_handler(target_id,agent._process_msg)
return True
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a_workflow = await WorkflowManager.get_instance().get_workflow(target_id)
if a_workflow is not None:
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bus.register_message_handler(target_id,a_workflow._process_msg)
return True
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return False
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async def is_agent(self,target_id:str) -> bool:
agent : AIAgent = await AgentManager.get_instance().get(target_id)
if agent is not None:
return True
else:
return False
async def initial(self) -> bool:
cm = ContactManager.get_instance()
owenr = cm.find_contact_by_name(self.username)
if owenr is None:
owenr = Contact(self.username)
owenr.added_by = self.username
owenr.is_family_member = True
owenr.email = AIStorage.get_instance().get_user_config().get_value("email")
owenr.telegram = AIStorage.get_instance().get_user_config().get_value("telegram")
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cm.add_family_member(self.username,owenr)
cal_env = CalenderEnvironment("calender")
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await cal_env.start()
Environment.set_env_by_id("calender",cal_env)
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workspace_env = WorkspaceEnvironment("bash")
Environment.set_env_by_id("bash",workspace_env)
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paint_env = PaintEnvironment("paint")
Environment.set_env_by_id("paint",paint_env)
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if await AgentManager.get_instance().initial() is not True:
logger.error("agent manager initial failed!")
return False
if await WorkflowManager.get_instance().initial() is not True:
logger.error("workflow manager initial failed!")
return False
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open_ai_node = OpenAI_ComputeNode.get_instance()
if await open_ai_node.initial() is not True:
logger.error("openai node initial failed!")
return False
ComputeKernel.get_instance().add_compute_node(open_ai_node)
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llama_nodes = ComputeNodeConfig.get_instance().initial()
for llama_node in llama_nodes:
llama_node.start()
ComputeKernel.get_instance().add_compute_node(llama_node)
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if await AIStorage.get_instance().is_feature_enable("llama"):
llama_ai_node = LocalLlama_ComputeNode()
if await llama_ai_node.initial() is True:
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await llama_ai_node.start()
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ComputeKernel.get_instance().add_compute_node(llama_ai_node)
else:
logger.error("llama node initial failed!")
await AIStorage.get_instance().set_feature_init_result("llama",False)
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if await AIStorage.get_instance().is_feature_enable("aigc"):
try:
google_text_to_speech_node = GoogleTextToSpeechNode.get_instance()
google_text_to_speech_node.init()
ComputeKernel.get_instance().add_compute_node(google_text_to_speech_node)
except Exception as e:
logger.error(f"google text to speech node initial failed! {e}")
await AIStorage.get_instance.set_feature_init_result("aigc",False)
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# stability_api_node = Stability_ComputeNode()
# if await stability_api_node.initial() is not True:
# logger.error("stability api node initial failed!")
# ComputeKernel.get_instance().add_compute_node(stability_api_node)
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local_st_text_compute_node = LocalSentenceTransformer_Text_ComputeNode()
if local_st_text_compute_node.initial() is not True:
logger.error("local sentence transformer text embedding node initial failed!")
else:
ComputeKernel.get_instance().add_compute_node(local_st_text_compute_node)
local_st_image_compute_node = LocalSentenceTransformer_Image_ComputeNode()
if local_st_image_compute_node.initial() is not True:
logger.error("local sentence transformer image embedding node initial failed!")
else:
ComputeKernel.get_instance().add_compute_node(local_st_image_compute_node)
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await ComputeKernel.get_instance().start()
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AIBus().get_default_bus().register_unhandle_message_handler(self._handle_no_target_msg)
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AIBus().get_default_bus().register_message_handler(self.username,self._user_process_msg)
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pipelines = KnowledgePipelineManager.initial(os.path.join(AIStorage().get_instance().get_myai_dir(), "knowledge/pipelines"))
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pipelines.load_dir(os.path.join(AIStorage().get_instance().get_system_app_dir(), "knowledge_pipelines"))
pipelines.load_dir(os.path.join(AIStorage().get_instance().get_myai_dir(), "knowledge_pipelines"))
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asyncio.create_task(pipelines.run())
TelegramTunnel.register_to_loader()
EmailTunnel.register_to_loader()
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user_data_dir = str(AIStorage.get_instance().get_myai_dir())
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tunnels_config_path = os.path.abspath(f"{user_data_dir}/etc/tunnels.cfg.toml")
tunnel_config = None
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try:
tunnel_config = toml.load(tunnels_config_path)
if tunnel_config is not None:
await AgentTunnel.load_all_tunnels_from_config(tunnel_config)
except Exception as e:
logger.warning(f"load tunnels config from {tunnels_config_path} failed!")
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return True
def get_version(self) -> str:
return "0.5.1"
async def send_msg(self,msg:str,target_id:str,topic:str,sender:str = None) -> str:
agent_msg = AgentMsg()
agent_msg.set(sender,target_id,msg)
agent_msg.topic = topic
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resp = await AIBus.get_default_bus().send_message(agent_msg)
if resp is not None:
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if resp.msg_type != AgentMsgType.TYPE_SYSTEM:
return resp.body
else:
return f"Process Message Error: {resp.body} Please check logs/aios.log for more details!"
else:
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return "System Error: Timeout, no resopnse! Please check logs/aios.log for more details!"
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async def _user_process_msg(self,msg:AgentMsg) -> AgentMsg:
pass
async def get_tunnel_config_from_input(self,tunnel_target,tunnel_type):
tunnel_config = {}
tunnel_config["tunnel_id"] = f"{tunnel_type}_2_{tunnel_target}"
tunnel_config["target"] = tunnel_target
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input_table = {}
tunnel_introduce : str = ""
match tunnel_type:
case "telegram":
tunnel_config["type"] = "TelegramTunnel"
input_table["token"] = UserConfigItem("telegram bot token\n You can get it from https://t.me/BotFather ,read https://core.telegram.org/bots#how-do-i-create-a-bot for more details")
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input_table["allow"] = UserConfigItem("allow group (default is member,you can choose contact or guest)")
case "email":
tunnel_config["type"] = "EmailTunnel"
case _:
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error_text = FormattedText([("class:error", f"tunnel type {tunnel_type}not support!")])
print_formatted_text(error_text,style=shell_style)
return None
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intro_text = FormattedText([("class:prompt", tunnel_introduce)])
print_formatted_text(intro_text,style=shell_style)
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for key,item in input_table.items():
user_input = await try_get_input(f"{key} : {item.desc}")
if user_input is None:
return None
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tunnel_config[key] = user_input
return tunnel_config
async def append_tunnel_config(self,tunnel_config):
user_data_dir = AIStorage.get_instance().get_myai_dir()
tunnels_config_path = os.path.abspath(f"{user_data_dir}/etc/tunnels.cfg.toml")
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all_tunnels = None
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try:
all_tunnels = toml.load(tunnels_config_path)
except Exception as e:
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logger.warning(f"load tunnels config for append from {tunnels_config_path} failed! {e}")
if all_tunnels is None:
all_tunnels = {}
all_tunnels[tunnel_config["tunnel_id"]] = tunnel_config
try:
f = open(tunnels_config_path,"w")
if f:
toml.dump(all_tunnels,f)
logger.info(f"append tunnel config to {tunnels_config_path} success!")
else:
logger.warning(f"append tunnel config to {tunnels_config_path} failed!")
except Exception as e:
logger.warning(f"append tunnels config from {tunnels_config_path} failed! {e}")
async def handle_contact_commands(self,args):
cm = ContactManager.get_instance()
if len(args) < 1:
return FormattedText([("class:error", f'/contact $contact_name, Like /contact "Jim Green"')])
contact_name = args[0]
contact = cm.find_contact_by_name(contact_name)
is_update = False
if contact is not None:
#show old info and ask user to update or remove
is_update = True
op_str = await try_get_input(f"Contact {contact_name} already exist, update or remove? (u/r)")
if op_str is None:
return None
if op_str == "r":
cm.remove_contact(contact_name)
return FormattedText([("class:title", f"remove {contact_name} success!")])
else:
print(f"old info: {contact}")
else:
contact = Contact(contact_name)
contact.is_family_member = False
is_family_member = await try_get_input(f"Is {contact_name} your family member? (y/n)")
if is_family_member is not None:
if is_family_member == "y" or is_family_member == "Y":
contact.is_family_member = True
else:
return None
contact_telegram = await try_get_input(f"Input {contact_name}'s telegram username:")
if contact_telegram is None:
return None
contact.telegram = contact_telegram
contact_email = await try_get_input(f"Input {contact_name}'s email:")
if contact_email is None:
return None
contact.email = contact_email
contact_phone = await try_get_input(f"Input {contact_name}'s phone (optional):")
if contact_phone is not None:
contact.phone = contact_phone
contact_note = await try_get_input(f"Input {contact_name}'s note (optional):")
if contact_note is not None:
contact.note = contact_note
contact.added_by = self.username
if is_update:
cm.set_contact(contact_name,contact)
else:
cm.add_contact(contact_name,contact)
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async def handle_knowledge_commands(self, args):
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show_text = FormattedText([("class:title", "sub command not support!\n"
"/knowledge pipelines\n"
"/knowledge journal $pipeline [$topn]\n"
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"/knowledge query $object_id\n")])
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if len(args) < 1:
return show_text
sub_cmd = args[0]
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if sub_cmd == "pipelines":
pipelines = KnowledgePipelineManager.get_instance().get_pipelines()
print_formatted_text("\r\n".join(pipeline.get_name() for pipeline in pipelines))
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if sub_cmd == "journal":
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name = args[1]
topn = 10 if len(args) == 2 else int(args[2])
journals = [str(journal) for journal in KnowledgePipelineManager.get_instance().get_pipeline(name).get_journal().latest_journals(topn)]
print_formatted_text("\r\n".join(str(journal) for journal in journals))
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if sub_cmd == "query":
if len(args) < 2:
return show_text
from knowledge import ObjectID, ObjectType
object_id = ObjectID.from_base58(args[1])
if object_id.get_object_type() == ObjectType.Image:
from PIL import Image
import io
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image = KnowledgeStore().load_object(object_id)
image_data = KnowledgeStore().bytes_from_object(image)
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image = Image.open(io.BytesIO(image_data))
image.show()
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async def handle_node_commands(self, args):
show_text = FormattedText([("class:title", "sub command not support!\n"
"/node add llama $model_name $url\n"
"/node rm llama $model_name $url\n"
"/node list\n")])
if len(args) < 1:
return show_text
sub_cmd = args[0]
if sub_cmd == "add":
if len(args) < 2:
return show_text
if args[1] == "llama":
if len(args) < 4:
return show_text
model_name = args[2]
url = args[3]
ComputeNodeConfig.get_instance().add_node("llama", url, model_name)
ComputeNodeConfig.get_instance().save()
node = LocalLlama_ComputeNode(url, model_name)
node.start()
ComputeKernel.get_instance().add_compute_node(node)
else:
return show_text
elif sub_cmd == "rm":
if len(args) < 2:
return show_text
if args[1] == "llama":
if len(args) < 4:
return show_text
model_name = args[3]
url = args[4]
ComputeNodeConfig.get_instance().remove_node("llama", url, model_name)
ComputeNodeConfig.get_instance().save()
else:
return show_text
elif sub_cmd == "list":
print_formatted_text(ComputeNodeConfig.get_instance().list())
async def call_func(self,func_name, args):
match func_name:
case 'send':
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show_text = FormattedText([("class:error", f'send args error,/send Tracy "Hello! It is a good day!" default')])
if len(args) == 3:
target_id = args[0]
msg_content = args[1]
topic = args[2]
resp = await self.send_msg(msg_content,target_id,topic,self.username)
show_text = FormattedText([("class:title", f"{self.current_topic}@{self.current_target} >>> "),
("class:content", resp)])
return show_text
case 'set_config':
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show_text = FormattedText([("class:error", f"set config args error,/set_config $config_item! ")])
if len(args) == 1:
key = args[0]
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config_item = AIStorage.get_instance().get_user_config().get_config_item(key)
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old_value = AIStorage.get_instance().get_user_config().get_value(key)
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if config_item is not None:
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value = await session.prompt_async(f"{key} : {config_item.desc} \nCurrent : {old_value}\nPlease input new value:",style=shell_style)
AIStorage.get_instance().get_user_config().set_value(key,value)
await AIStorage.get_instance().get_user_config().save_to_user_config()
show_text = FormattedText([("class:title", f"set {key} to {value} success!")])
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else:
show_text = FormattedText([("class:error", f"set config failed! config item {key} not found!")])
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return show_text
case 'connect':
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show_text = FormattedText([("class:error", "args error, /connect $target")])
if len(args) < 1:
return show_text
tunnel_target = args[0]
if len(args) < 2:
tunnel_type = "telegram"
else:
tunnel_type = args[1]
tunnel_config = await self.get_tunnel_config_from_input(tunnel_target,tunnel_type)
if tunnel_config:
if await AgentTunnel.load_tunnel_from_config(tunnel_config):
# append
await self.append_tunnel_config(tunnel_config)
show_text = FormattedText([("class:title", f"connect to {tunnel_target} success!")])
return show_text
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case 'knowledge':
return await self.handle_knowledge_commands(args)
case 'contact':
return await self.handle_contact_commands(args)
case 'think':
if len(args) >= 1:
target_id = args[0]
the_agent = await AgentManager.get_instance().get(target_id)
if the_agent is not None:
await the_agent._do_think()
case 'open':
if len(args) >= 1:
target_id = args[0]
else:
show_text = FormattedText([("class:error", "/open Need Target Agent/Workflow ID! like /open Jarvis default")])
return show_text
if len(args) >= 2:
topic = args[1]
else:
topic = "default"
target_exist = False
if await AgentManager.get_instance().is_exist(target_id):
target_exist = True
if await WorkflowManager.get_instance().is_exist(target_id):
target_exist = True
if target_exist is False:
show_text = FormattedText([("class:error", f"Target {target_id} not exist!")])
return show_text
self.current_target = target_id
self.current_topic = topic
show_text = FormattedText([("class:title", f"current session switch to {topic}@{target_id}")])
AIStorage.get_instance().get_user_config().set_value("shell.current",f"{self.current_topic}@{self.current_target}")
await AIStorage.get_instance().get_user_config().save_to_user_config()
return show_text
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case 'enable':
if len(args) >= 1:
feature = args[0]
else:
show_text = FormattedText([("class:error", "/enable Need Feature Name! like /enable llama")])
return show_text
if await AIStorage.get_instance().is_feature_enable(feature):
show_text = FormattedText([("class:title", f"Feature {feature} already enabled!")])
return show_text
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await AIStorage.get_instance().enable_feature(feature)
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show_text = FormattedText([("class:title", f"Feature {feature} enabled!")])
return show_text
case 'disable':
if len(args) >= 1:
feature = args[0]
else:
show_text = FormattedText([("class:error", "/disable Need Feature Name! like /disable llama")])
return show_text
if not await AIStorage.get_instance().is_feature_enable(feature):
show_text = FormattedText([("class:title", f"Feature {feature} already disabled!")])
return show_text
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await AIStorage.get_instance().disable_feature(feature)
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show_text = FormattedText([("class:title", f"Feature {feature} disabled!")])
return show_text
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#case 'login':
# if len(args) >= 1:
# self.username = args[0]
# AIBus().get_default_bus().register_message_handler(self.username,self._user_process_msg)
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# return self.username + " login success!"
case 'history':
num = 10
offset = 0
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if args is not None:
if len(args) >= 1:
num = args[0]
if len(args) >= 2:
offset = args[1]
db_path = ""
if await self.is_agent(self.current_target):
db_path = AgentManager.get_instance().db_path
else:
db_path = WorkflowManager.get_instance().db_file
chatsession:AIChatSession = AIChatSession.get_session(self.current_target,f"{self.username}#{self.current_topic}",db_path,False)
if chatsession is not None:
msgs = chatsession.read_history(num,offset)
format_texts = []
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for msg in msgs:
format_texts.append(("class:content",f"{msg.sender} >>> {msg.body}"))
format_texts.append(("",f"\n-------------------\n"))
return FormattedText(format_texts)
return FormattedText([("class:title", f"chatsession not found")])
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case 'node':
return await self.handle_node_commands(args)
case 'exit':
os._exit(0)
case 'help':
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return FormattedText([("class:title", f"GO to https://github.com/fiatrete/OpenDAN-Personal-AI-OS/issues ^_^")])
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##########################################################################################################################
history = FileHistory('aios_shell_history.txt')
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session = PromptSession(history=history)
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def parse_function_call(func_string):
if len(func_string) > 2:
if func_string[0] == '/' and func_string[1] != '/':
str_list = shlex.split(func_string[1:])
func_name = str_list[0]
params = str_list[1:]
return func_name, params
else:
return None
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async def try_get_input(desc:str,mutil_line:bool = False,check_func:callable = None) -> str:
user_input = await session.prompt_async(f"{desc} \nType /exit to abort. \nPlease input:",style=shell_style)
err_str = ""
if check_func is None:
if len(user_input) > 0:
if user_input != "/exit":
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if mutil_line is False:
user_input = user_input.strip()
return user_input
else:
return None
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else:
is_ok,err_str = check_func(user_input)
if is_ok:
return user_input
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error_text = FormattedText([("class:error", err_str)])
print_formatted_text(error_text,style=shell_style)
return await try_get_input(desc,check_func)
async def get_user_config_from_input(check_result:dict) -> bool:
for key,item in check_result.items():
user_input = await try_get_input(f"System config {key} ({item.desc}) not define!")
if user_input is None:
if item.is_optional:
continue
else:
True
if len(user_input) > 0:
AIStorage.get_instance().get_user_config().set_value(key,user_input)
await AIStorage.get_instance().get_user_config().save_to_user_config()
return True
async def main_daemon_loop(shell:AIOS_Shell):
while shell.is_working:
await asyncio.sleep(1)
return 0
def print_welcome_screen():
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print("\033[1;31m")
logo = """
\t _______ ____________________ __
\t __ __ \______________________ __ \__ |__ | / /
\t _ / / /__ __ \ _ \_ __ \_ / / /_ /| |_ |/ /
\t / /_/ /__ /_/ / __/ / / / /_/ /_ ___ | /| /
\t \____/ _ .___/\___//_/ /_//_____/ /_/ |_/_/ |_/
\t /_/
"""
print(logo)
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print("\033[0m")
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print("\033[1;32m \t\tWelcome to OpenDAN - Your Personal AI OS\033[0m\n")
introduce = """
\tOpenDAN (Open and Do Anything Now with AI) is revolutionizing the
\tAI landscape with its Personal AI Operating System. Designed for
\tseamless integration of diverse AI modules, it ensures unmatched
\tinteroperability. OpenDAN empowers users to craft powerful AI agents:
\tfrom butlers and assistants to personal tutors and digital companions.
\tAll while retaining control. These agents can team up to tackle complex
\tchallenges, integrate with existing services, and command IoT devices.
\t
\tWith OpenDAN, we're putting AI in your hands, making life simpler and smarter.
\t
\t================ AIOS Shell Handbook ================
\033[1;94m\tUnderstand the Shell Prompt :\033[0m [current_username]<->[current_topic]@[current_target]$
\033[1;94m\tTalk with Agent/Workflow :\033[0m Directly input and wait.
\033[1;94m\tTalk with another Agent/Workflow :\033[0m /open $target_name [$topic_name]
\033[1;94m\tInstall new Agent/Workflow :\033[0m /install $agent_name (Not support at 0.5.1)
\t\t(For Developer) Download and unzip Agent to ~/myai/agents or ~/myai/workflows
\033[1;94m\tView chat History :\033[0m /history
\033[1;94m\tChange AIOS Owner's telegram username :\033[0m /set_config telegram
\033[1;94m\tChange OpenAI API Token :\033[0m /set_config $openai_api_key
\033[1;94m\tGive your Agent a Telegram account :\033[0m /connect $agent_name
\033[1;94m\tAdd personal files to the AI Knowledge Base. \033[0m
\t\t1) Copy your file to ~/myai/data
\033[1;94m\tSearch your knowledge base :\033[0m /open Mia
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\033[1;94m\tCheck the progress of AI reading personal data :\033[0m /knowledge $pipeline journal
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\033[1;94m\tQuery object with ID in knowledge base :\033[0m /knowledge query $object_id
\033[1;94m\tOpen AI Bash (For Developer Only):\033[0m /open ai_bash
\033[1;94m\tEnable AIGC Feature :\033[0m /enable aigc
\033[1;94m\tEnable llama (Local LLM Kernel) :\033[0m /enable llama
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"""
print(introduce)
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print(f"\033[1;34m \t\tVersion: {AIOS_Version}\n\033")
print("\033[1;33m \tOpenDAN is an open-source project, let's define the future of Humans and AI together.\033[0m")
print("\033[1;33m \tGithub\t: https://github.com/fiatrete/OpenDAN-Personal-AI-OS\033[0m")
print("\033[1;33m \tWebsite\t: https://www.opendan.ai\033[0m")
print("\n\n")
async def main():
print_welcome_screen()
print("Booting...")
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if os.path.isdir(f"{directory}/../../../rootfs"):
AIStorage.get_instance().is_dev_mode = True
else:
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AIStorage.get_instance().is_dev_mode = False
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if AIStorage.get_instance().is_dev_mode:
logging.basicConfig(filename="aios_shell.log",filemode="w",encoding='utf-8',force=True,
level=logging.INFO,
format='[%(asctime)s]%(name)s[%(levelname)s]: %(message)s')
else:
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dir_path = f"{AIStorage.get_instance().get_myai_dir()}/logs"
if not os.path.exists(dir_path):
os.makedirs(dir_path)
log_file = f"{AIStorage.get_instance().get_myai_dir()}/logs/aios.log"
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handler = RotatingFileHandler(log_file, maxBytes=50*1024*1024, backupCount=100)
logging.basicConfig(handlers=[handler],
level=logging.INFO,
format='%(asctime)s - %(name)s - %(levelname)s - %(message)s')
is_daemon = False
logger.info(f"Check Host OS :{os.name}")
if os.name != 'nt':
is_daemon = os.fstat(0) != os.fstat(1) or os.fstat(0) != os.fstat(2)
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shell = AIOS_Shell("user")
shell.declare_all_user_config()
await AIStorage.get_instance().initial()
check_result = AIStorage.get_instance().get_user_config().check_config()
if check_result is not None:
if is_daemon:
logger.error(check_result)
return 1
else:
#Remind users to enter necessary configurations.
if await get_user_config_from_input(check_result) is False:
return 1
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shell.username = AIStorage.get_instance().get_user_config().get_value("username")
init_result = await shell.initial()
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proxy.apply_storage()
if init_result is False:
if is_daemon:
logger.error("aios shell initial failed!")
return 1
else:
print("aios shell initial failed!")
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return 1
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print(f"aios shell {shell.get_version()} ready. Daemon:{is_daemon}")
logger.info(f"aios shell {shell.get_version()} ready. Daemon:{is_daemon}")
if is_daemon:
return await main_daemon_loop(shell)
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completer = WordCompleter(['/send $target $msg $topic',
'/open $target $topic',
'/history $num $offset',
'/connect $target',
'/contact $name',
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'/knowledge pipelines',
'/knowledge journal $pipeline [$topn]',
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'/knowledge query $object_id',
'/set_config $key',
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'/enable $feature',
'/disable $feature',
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'/node add llama $model_name $url',
'/node rm llama $model_name $url',
'/show',
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'/exit',
'/help'], ignore_case=True)
current = AIStorage.get_instance().get_user_config().get_value("shell.current")
current = current.split("@")
shell.current_target = current[1]
shell.current_topic = current[0]
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await asyncio.sleep(0.2)
while True:
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user_input = await session.prompt_async(f"{shell.username}<->{shell.current_topic}@{shell.current_target}$ ",completer=completer,style=shell_style)
if len(user_input) <= 1:
continue
func_call = parse_function_call(user_input)
show_text = None
if func_call:
show_text = await shell.call_func(func_call[0], func_call[1])
else:
resp = await shell.send_msg(user_input,shell.current_target,shell.current_topic,shell.username)
show_text = FormattedText([
("class:title", f"{shell.current_topic}@{shell.current_target} >>> "),
("class:content", resp)
])
print_formatted_text(show_text,style=shell_style)
#print_formatted_text(f"{shell.username}<->{shell.current_topic}@{shell.current_target} >>> {resp}",style=shell_style)
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if __name__ == "__main__":
asyncio.run(main())