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Update app.py
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app.py
CHANGED
@@ -1,356 +1,110 @@
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import os
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import subprocess
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import streamlit as st
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import
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import together
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import sys
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HUGGING_FACE_REPO_URL = "https://huggingface.co/spaces/acecalisto3/DevToolKit"
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PROJECT_ROOT = "projects"
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AGENT_DIRECTORY = "agents"
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# Global state to manage communication between Tool Box and Workspace Chat App
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if 'chat_history' not in st.session_state:
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st.session_state.chat_history = []
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if 'terminal_history' not in st.session_state:
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st.session_state.terminal_history = []
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if 'workspace_projects' not in st.session_state:
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st.session_state.workspace_projects = {}
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if 'available_agents' not in st.session_state:
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st.session_state.available_agents = []
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if 'current_state' not in st.session_state:
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st.session_state.current_state = {
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'toolbox': {},
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'workspace_chat': {}
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}
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class AIAgent:
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def __init__(self, name, description, skills):
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self.name = name
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self.description = description
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self.skills = skills
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def create_agent_prompt(self):
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skills_str = '\n'.join([f"* {skill}" for skill in self.skills])
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agent_prompt = (
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f"""
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As an elite expert developer, my name is {self.name}. I possess a comprehensive understanding of the following areas:
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{skills_str}
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I am confident that I can leverage my expertise to assist you in developing and deploying cutting-edge web applications. Please feel free to ask any questions or present any challenges you may encounter.
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"""
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)
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return agent_prompt
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"""
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summary = (
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"Chat History:\n" + "\n".join([f"User: {u}\nAgent: {a}" for u, a in chat_history])
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)
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summary += (
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"\n\nWorkspace Projects:\n" + "\n".join([f"{p}: {details}" for p, details in workspace_projects.items()])
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)
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# - Check if the user has requested to create a new file
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# - Check if the user has requested to install a package
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# - Check if the user has requested to run a command
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# - Check if the user has requested to generate code
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# - Check if the user has requested to translate code
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# - Check if the user has requested to summarize text
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# - Check if the user has requested to analyze sentiment
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)
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def save_agent_to_file(agent):
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"""Saves the agent's prompt to a file."""
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if not os.path.exists(AGENT_DIRECTORY):
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os.makedirs(AGENT_DIRECTORY)
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file_path = os.path.join(AGENT_DIRECTORY, f"{agent.name}.txt")
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with open(file_path, "w") as file:
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file.write(agent.create_agent_prompt())
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st.session_state.available_agents.append(agent.name)
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"""Loads an agent prompt from a file."""
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file_path = os.path.join(AGENT_DIRECTORY, f"{agent_name}.txt")
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if os.path.exists(file_path):
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with open(file_path, "r") as file:
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agent_prompt = file.read()
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return agent_prompt
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else:
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return None
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return agent.create_agent_prompt()
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try:
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)
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if input_ids.shape[1] > max_input_length:
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input_ids = input_ids[:, :max_input_length]
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outputs = model.generate(
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input_ids, max_new_tokens=50, num_return_sequences=1, do_sample=True,
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pad_token_id=tokenizer.eos_token_id # Set pad_token_id to eos_token_id
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)
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response = tokenizer.decode(outputs[0], skip_special_tokens=True)
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return response
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if project_name:
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project_path = os.path.join(PROJECT_ROOT, project_name)
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if not os.path.exists(project_path):
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return f"Project {project_name} does not exist."
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result = subprocess.run(command, shell=True, capture_output=True, text=True, cwd=project_path)
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else:
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result = subprocess.run(command, shell=True, capture_output=True, text=True)
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return result.stdout
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# Code editor interface
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def code_editor_interface(code):
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try:
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return formatted_code, lint_message
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# Text summarization tool
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def summarize_text(text):
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summarizer = pipeline("summarization", model="t5-base")
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summary = summarizer(text, max_length=130, min_length=30, do_sample=False)
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return summary[0]['summary_text']
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# Sentiment analysis tool
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def sentiment_analysis(text):
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analyzer = pipeline("sentiment-analysis", model="distilbert-base-uncased-finetuned-sst-2-english")
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result = analyzer(text)
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return result[0]['label']
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# Text translation tool (code translation)
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def translate_code(code, source_language, target_language):
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translator = pipeline("translation", model="Helsinki-NLP/opus-mt-en-es") # Example: English to Spanish
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translated_code = translator(code, target_lang=target_language)[0]['translation_text']
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return translated_code
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def generate_code(code_idea):
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generator = pipeline('text-generation', model='bigcode/starcoder')
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generated_code = generator(code_idea, max_length=1000, num_return_sequences=1)[0]['generated_text']
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return generated_code
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def chat_interface(input_text):
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chatbot = pipeline("text-generation", model="microsoft/DialoGPT-medium")
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response = chatbot(input_text, max_length=50, num_return_sequences=1)[0]['generated_text']
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return response
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# Workspace interface
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def workspace_interface(project_name):
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project_path = os.path.join(PROJECT_ROOT, project_name)
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if not os.path.exists(project_path):
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os.makedirs(project_path)
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st.session_state.workspace_projects[project_name] = {'files': []}
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return f"Project '{project_name}' created successfully."
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else:
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return f"Project '{project_name}' already exists."
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# Add code to workspace
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def add_code_to_workspace(project_name, code, file_name):
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project_path = os.path.join(PROJECT_ROOT, project_name)
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if not os.path.exists(project_path):
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return f"Project '{project_name}' does not exist."
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file_path = os.path.join(project_path, file_name)
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with open(file_path, "w") as file:
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file.write(code)
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st.session_state.workspace_projects[project_name]['files'].append(file_name)
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return f"Code added to '{file_name}' in project '{project_name}'."
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# Streamlit App
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st.title("AI Agent Creator")
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# Sidebar navigation
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st.sidebar.title("Navigation")
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app_mode = st.sidebar.selectbox("Choose the app mode", ["AI Agent Creator", "Tool Box", "Workspace Chat App"])
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if app_mode == "AI Agent Creator":
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# AI Agent Creator
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st.header("Create an AI Agent from Text")
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st.subheader("From Text")
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agent_name = st.text_input("Enter agent name:")
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text_input = st.text_area("Enter skills (one per line):")
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if st.button("Create Agent"):
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agent_prompt = create_agent_from_text(agent_name, text_input)
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st.success(f"Agent '{agent_name}' created and saved successfully.")
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st.session_state.available_agents.append(agent_name)
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elif app_mode == "Tool Box":
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# Tool Box
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st.header("AI-Powered Tools")
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# Chat Interface
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st.subheader("Chat with CodeCraft")
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chat_input = st.text_area("Enter your message:")
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if st.button("Send"):
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chat_response = chat_interface(chat_input)
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st.session_state.chat_history.append((chat_input, chat_response))
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st.write((f"CodeCraft: {chat_response}"))
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# Terminal Interface
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st.subheader("Terminal")
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terminal_input = st.text_input("Enter a command:")
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if st.button("Run"):
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terminal_output = terminal_interface(terminal_input)
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st.session_state.terminal_history.append((terminal_input, terminal_output))
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st.code(terminal_output, language="bash")
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# Code Editor Interface
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st.subheader("Code Editor")
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code_editor = st.text_area("Write your code:", height=300)
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if st.button("Format & Lint"):
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formatted_code, lint_message = code_editor_interface(code_editor)
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st.code(formatted_code, language="python")
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st.info(lint_message)
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# Text Summarization Tool
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st.subheader("Summarize Text")
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text_to_summarize = st.text_area("Enter text to summarize:")
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if st.button("Summarize"):
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summary = summarize_text(text_to_summarize)
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st.write((f"Summary: {summary}"))
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# Sentiment Analysis Tool
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st.subheader("Sentiment Analysis")
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sentiment_text = st.text_area("Enter text for sentiment analysis:")
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if st.button("Analyze Sentiment"):
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sentiment = sentiment_analysis(sentiment_text)
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st.write((f"Sentiment: {sentiment}"))
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# Text Translation Tool (Code Translation)
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st.subheader("Translate Code")
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code_to_translate = st.text_area("Enter code to translate:")
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source_language = st.text_input("Enter source language (e.g., 'Python'):")
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target_language = st.text_input("Enter target language (e.g., 'JavaScript'):")
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if st.button("Translate Code"):
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translated_code = translate_code(code_to_translate, source_language, target_language)
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st.code(translated_code, language=target_language.lower())
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# Code Generation
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st.subheader("Code Generation")
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code_idea = st.text_input("Enter your code idea:")
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if st.button("Generate Code"):
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generated_code = generate_code(code_idea)
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st.code(generated_code, language="python")
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elif app_mode == "Workspace Chat App":
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# Workspace Chat App
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st.header("Workspace Chat App")
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# Project Workspace Creation
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st.subheader("Create a New Project")
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project_name = st.text_input("Enter project name:")
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if st.button("Create Project"):
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workspace_status = workspace_interface(project_name)
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st.success(workspace_status)
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# Add Code to Workspace
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st.subheader("Add Code to Workspace")
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code_to_add = st.text_area("Enter code to add to workspace:")
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file_name = st.text_input("Enter file name (e.g., 'app.py'):")
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if st.button("Add Code"):
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add_code_status = add_code_to_workspace(project_name, code_to_add, file_name)
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st.success(add_code_status)
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# Terminal Interface with Project Context
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st.subheader("Terminal (Workspace Context)")
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terminal_input = st.text_input("Enter a command within the workspace:")
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if st.button("Run Command"):
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terminal_output = terminal_interface(terminal_input, project_name)
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st.code(terminal_output, language="bash")
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# Chat Interface for Guidance
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st.subheader("Chat with CodeCraft for Guidance")
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chat_input = st.text_area("Enter your message for guidance:")
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if st.button("Get Guidance"):
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chat_response = chat_interface(chat_input)
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st.session_state.chat_history.append((chat_input, chat_response))
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st.write((f"CodeCraft: {chat_response}"))
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# Display Chat History
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st.subheader("Chat History")
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for user_input, response in st.session_state.chat_history:
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st.write((f"User: {user_input}"))
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st.write((f"CodeCraft: {response}"))
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# Display Terminal History
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st.subheader("Terminal History")
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for command, output in st.session_state.terminal_history:
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st.write((f"Command: {command}"))
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st.code(output, language="bash")
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# Display Projects and Files
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st.subheader("Workspace Projects")
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for project, details in st.session_state.workspace_projects.items():
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st.write((f"Project: {project}"))
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for file in details['files']:
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st.write((f" - {file}"))
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# Chat with AI Agents
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st.subheader("Chat with AI Agents")
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selected_agent = st.selectbox("Select an AI agent", st.session_state.available_agents)
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agent_chat_input = st.text_area("Enter your message for the agent:")
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if st.button("Send to Agent"):
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agent_chat_response = chat_interface_with_agent(agent_chat_input, selected_agent)
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st.session_state.chat_history.append((agent_chat_input, agent_chat_response))
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st.write((f"{selected_agent}: {agent_chat_response}"))
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# Automate Build Process
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st.subheader("Automate Build Process")
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if st.button("Automate"):
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agent = AIAgent(selected_agent, "", []) # Load the agent without skills for now
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summary, next_step = agent.autonomous_build(st.session_state.chat_history, st.session_state.workspace_projects)
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st.write("Autonomous Build Summary:")
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st.write(summary)
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st.write("Next Step:")
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st.write(next_step)
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import streamlit as st
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import gradio as gr
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from transformers import pipeline, AutoModelForSeq2SeqLM, AutoTokenizer
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import subprocess
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import os
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# Initialize Hugging Face pipelines
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text_generator = pipeline("text-generation", model="gpt2")
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code_generator = pipeline("text2text-generation", model="microsoft/CodeGPT-small-py")
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# Streamlit App
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st.title("AI Dev Tool Kit")
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# Sidebar for Navigation
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st.sidebar.title("Navigation")
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app_mode = st.sidebar.selectbox("Choose the app mode", ["Explorer", "In-Chat Terminal", "Tool Box"])
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if app_mode == "Explorer":
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st.header("Explorer")
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st.write("Explore files and projects here.")
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# Implement your explorer functionality here
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+
elif app_mode == "In-Chat Terminal":
|
24 |
+
st.header("In-Chat Terminal")
|
25 |
+
|
26 |
+
def run_terminal_command(command):
|
27 |
+
try:
|
28 |
+
result = subprocess.run(command, shell=True, capture_output=True, text=True)
|
29 |
+
return result.stdout if result.returncode == 0 else result.stderr
|
30 |
+
except Exception as e:
|
31 |
+
return str(e)
|
32 |
+
|
33 |
+
def terminal_interface(command):
|
34 |
+
response = run_terminal_command(command)
|
35 |
+
return response
|
36 |
+
|
37 |
+
def nlp_code_interpreter(text):
|
38 |
+
response = code_generator(text, max_length=150)
|
39 |
+
code = response[0]['generated_text']
|
40 |
+
return code, run_terminal_command(code)
|
41 |
+
|
42 |
+
with gr.Blocks() as iface:
|
43 |
+
terminal_input = gr.Textbox(label="Enter Command or Code")
|
44 |
+
terminal_output = gr.Textbox(label="Terminal Output", lines=10)
|
45 |
+
terminal_button = gr.Button("Run")
|
46 |
+
|
47 |
+
terminal_button.click(
|
48 |
+
nlp_code_interpreter,
|
49 |
+
inputs=terminal_input,
|
50 |
+
outputs=[terminal_output, terminal_output]
|
51 |
)
|
52 |
|
53 |
+
iface.launch()
|
|
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|
|
|
54 |
|
55 |
+
st.write("Use the terminal to execute commands or interpret natural language into code.")
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
56 |
|
57 |
+
elif app_mode == "Tool Box":
|
58 |
+
st.header("Tool Box")
|
59 |
+
st.write("Access various AI development tools here.")
|
60 |
+
# Implement your tool box functionality here
|
|
|
61 |
|
62 |
+
# Deploy to Hugging Face Spaces
|
63 |
+
def deploy_to_huggingface(app_name):
|
64 |
+
code = f"""
|
65 |
+
import gradio as gr
|
66 |
|
67 |
+
def run_terminal_command(command):
|
68 |
try:
|
69 |
+
result = subprocess.run(command, shell=True, capture_output=True, text=True)
|
70 |
+
return result.stdout if result.returncode == 0 else result.stderr
|
71 |
+
except Exception as e:
|
72 |
+
return str(e)
|
73 |
+
|
74 |
+
def nlp_code_interpreter(text):
|
75 |
+
response = code_generator(text, max_length=150)
|
76 |
+
code = response[0]['generated_text']
|
77 |
+
return code, run_terminal_command(code)
|
78 |
+
|
79 |
+
with gr.Blocks() as iface:
|
80 |
+
terminal_input = gr.Textbox(label="Enter Command or Code")
|
81 |
+
terminal_output = gr.Textbox(label="Terminal Output", lines=10)
|
82 |
+
terminal_button = gr.Button("Run")
|
83 |
+
|
84 |
+
terminal_button.click(
|
85 |
+
nlp_code_interpreter,
|
86 |
+
inputs=terminal_input,
|
87 |
+
outputs=[terminal_output, terminal_output]
|
88 |
)
|
89 |
|
90 |
+
iface.launch()
|
91 |
+
"""
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
92 |
|
93 |
+
with open("app.py", "w") as f:
|
94 |
+
f.write(code)
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
95 |
|
|
|
|
|
96 |
try:
|
97 |
+
subprocess.run(["huggingface-cli", "repo", "create", "--type", "space", "--space_sdk", "gradio", app_name], check=True)
|
98 |
+
subprocess.run(["git", "init"], cwd=f"./{app_name}", check=True)
|
99 |
+
subprocess.run(["git", "add", "."], cwd=f"./{app_name}", check=True)
|
100 |
+
subprocess.run(['git', 'commit', '-m', '"Initial commit"'], cwd=f'./{app_name}', check=True)
|
101 |
+
subprocess.run(["git", "push", "https://huggingface.co/spaces/" + app_name, "main"], cwd=f'./{app_name}', check=True)
|
102 |
+
return f"Successfully deployed to Hugging Face Spaces: https://huggingface.co/spaces/{app_name}"
|
103 |
+
except Exception as e:
|
104 |
+
return f"Error deploying to Hugging Face Spaces: {e}"
|
105 |
+
|
106 |
+
# Example usage
|
107 |
+
if st.button("Deploy to Hugging Face"):
|
108 |
+
app_name = "ai-dev-toolkit"
|
109 |
+
deploy_status = deploy_to_huggingface(app_name)
|
110 |
+
st.write(deploy_status)
|
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