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Update app.py
Browse files
app.py
CHANGED
@@ -8,8 +8,6 @@ from io import StringIO
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import sys
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import torch
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from huggingface_hub import hf_hub_url, cached_download, HfApi
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import re
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from typing import List, Dict
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# Access Hugging Face API key from secrets
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hf_token = st.secrets["hf_token"]
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@@ -30,34 +28,36 @@ 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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# AI Guide Toggle
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ai_guide_level = st.sidebar.radio("AI Guide Level", ["Full Assistance", "Partial Assistance", "No Assistance"])
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class AIAgent:
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def __init__(self, name
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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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self._hf_api = HfApi() # Initialize HfApi here
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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 = 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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return agent_prompt
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def autonomous_build(self, chat_history
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project_name: str, selected_model: str, hf_token: str) -> tuple[str, str]:
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summary = "Chat History:\n" + "\n".join([f"User: {u}\nAgent: {a}" for u, a in chat_history])
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summary += "\n\nWorkspace Projects:\n" + "\n".join([f"{p}: {details}" for p, details in workspace_projects.items()])
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next_step = "Based on the current state, the next logical step is to implement the main application logic."
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return summary, next_step
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def deploy_built_space_to_hf(self
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# Assuming you have a function that generates the space content
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space_content = generate_space_content(project_name)
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repository = self._hf_api.create_repo(
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@@ -74,26 +74,24 @@ I am confident that I can leverage my expertise to assist you in developing and
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repo_type="space",
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token=hf_token
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)
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return repository
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def has_valid_hf_token(self)
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return self._hf_api.whoami(token=hf_token) is not None
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def process_input(input_text
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chatbot_tokenizer = AutoTokenizer.from_pretrained("microsoft/DialoGPT-medium", clean_up_tokenization_spaces=True)
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chatbot = pipeline("text-generation", model="microsoft/DialoGPT-medium", tokenizer=chatbot_tokenizer)
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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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def run_code(code
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try:
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result = subprocess.run(code, shell=True, capture_output=True, text=True)
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return result.stdout
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except Exception as e:
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return str(e)
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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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@@ -102,7 +100,7 @@ def workspace_interface(project_name: str) -> str:
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else:
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return f"Project '{project_name}' already exists."
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def add_code_to_workspace(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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@@ -113,69 +111,34 @@ def add_code_to_workspace(project_name: str, code: str, file_name: str) -> str:
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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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def display_chat_history(chat_history
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return "\n".join([f"User: {u}\nAgent: {a}" for u, a in chat_history])
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def display_workspace_projects(workspace_projects
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return "\n".join([f"{p}: {details}" for p, details in workspace_projects.items()])
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def generate_space_content(project_name
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# Logic to generate the Streamlit app content based on project_name
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# ... (This is where you'll need to implement the actual code generation)
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return "import streamlit as st\nst.title('My Streamlit App')\nst.write('Hello, world!')"
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if re.search(r'for .* in .*:\n\s+.*\.append\(', code):
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hints.append("Consider using a list comprehension instead of a loop for appending to a list.")
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# Example pointer: Recommend using f-strings for string formatting
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if re.search(r'\".*\%s\"|\'.*\%s\'', code) or re.search(r'\".*\%d\"|\'.*\%d\'', code):
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hints.append("Consider using f-strings for cleaner and more efficient string formatting.")
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# Example pointer: Avoid using global variables
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if re.search(r'\bglobal\b', code):
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hints.append("Avoid using global variables. Consider passing parameters or using classes.")
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# Example pointer: Recommend using `with` statement for file operations
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if re.search(r'open\(.+\)', code) and not re.search(r'with open\(.+\)', code):
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hints.append("Consider using the `with` statement when opening files to ensure proper resource management.")
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return hints
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def get_code_completion(prompt: str) -> str:
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# Generate code completion based on the current code input
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# Use max_new_tokens instead of max_length
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completions = code_generator(prompt, max_new_tokens=max_new_tokens, num_return_sequences=1)
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return completions[0]['generated_text']
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def lint_code(code: str) -> List[str]:
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# Capture pylint output
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pylint_output = StringIO()
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sys.stdout = pylint_output
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# Run pylint on the provided code
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pylint.lint.Run(['--from-stdin'], do_exit=False, argv=[], stdin=StringIO(code))
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# Reset stdout and fetch lint results
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sys.stdout = sys.__stdout__
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lint_results = pylint_output.getvalue().splitlines()
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return lint_results
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if __name__ == "__main__":
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st.sidebar.title("Navigation")
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@@ -192,12 +155,12 @@ if __name__ == "__main__":
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if st.button("Run"):
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output = run_code(terminal_input)
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st.session_state.terminal_history.append((terminal_input, output))
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st.code(output, language="bash"
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if ai_guide_level != "No Assistance":
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st.write("Run commands here to add packages to your project. For example: pip install <package-name
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if terminal_input and "install" in terminal_input:
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package_name = terminal_input.split("install")[-1].strip()
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st.write(f"Package {package_name} will be added to your project.")
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elif app_mode == "Explorer":
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st.header("Explorer")
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@@ -228,38 +191,16 @@ if __name__ == "__main__":
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# Logic to save code
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pass
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if ai_guide_level != "No Assistance":
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st.write("The function foo() requires the bar package. Add it to requirements.txt
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# Analyze code and provide real-time hints
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hints = analyze_code(code_editor)
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if hints:
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st.write("**Helpful Hints:**")
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for hint in hints:
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st.write(f"- {hint}")
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if st.button("Get Code Suggestion"):
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# Provide a predictive code completion
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completion = get_code_completion(code_editor)
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st.write("**Suggested Code Completion:**")
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st.code(completion, language="python")
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if st.button("Check Code"):
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# Analyze the code for errors and warnings
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lint_results = lint_code(code_editor)
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if lint_results:
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st.write("**Errors and Warnings:**")
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for result in lint_results:
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st.write(result)
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else:
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st.write("No issues found! Your code is clean.")
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elif app_mode == "Build & Deploy":
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st.header("Build & Deploy")
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project_name_input = st.text_input("Enter Project Name for Automation:")
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if st.button("Automate"):
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selected_agent = st.selectbox("Select an AI agent", st.session_state.available_agents)
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selected_model =
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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, project_name_input, selected_model, hf_token)
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st.write("Autonomous Build Summary:")
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st.write("Next Step:")
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st.write(next_step)
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if agent._hf_api and agent.has_valid_hf_token():
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st.markdown("## Congratulations! Successfully deployed Space 🚀 ##")
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st.markdown(
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#
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if ai_guide_level != "No Assistance":
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# Process the user's input and get a response from the AI Guide
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agent_response = process_input(user_input)
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st.session_state.chat_history.append((user_input, agent_response))
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# Clear the user input field
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st.session_state.user_input = ""
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# CSS for styling
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st.markdown("""
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@@ -295,14 +231,17 @@ if __name__ == "__main__":
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margin: 0;
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padding: 0;
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}
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h1, h2, h3, h4, h5, h6 {
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color: #333;
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}
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.container {
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width: 90%;
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margin: 0 auto;
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padding: 20px;
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}
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/* Navigation Sidebar */
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.sidebar {
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background-color: #2c3e50;
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width: 250px;
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overflow-y: auto;
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}
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.sidebar a {
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color: #ecf0f1;
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text-decoration: none;
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display: block;
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padding: 10px 0;
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}
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.sidebar a:hover {
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background-color: #34495e;
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border-radius: 5px;
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}
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/* Main Content */
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.main-content {
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margin-left: 270px;
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padding: 20px;
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}
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/* Buttons */
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button {
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background-color: #3498db;
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cursor: pointer;
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font-size: 16px;
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}
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button:hover {
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background-color: #2980b9;
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}
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/* Text Areas and Inputs */
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textarea, input[type="text"] {
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width: 100%;
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border-radius: 5px;
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box-sizing: border-box;
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}
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textarea:focus, input[type="text"]:focus {
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border-color: #3498db;
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outline: none;
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}
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/* Terminal Output */
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.code-output {
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background-color: #1e1e1e;
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border-radius: 5px;
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font-family: 'Courier New', Courier, monospace;
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}
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/* Chat History */
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.chat-history {
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background-color: #ecf0f1;
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max-height: 300px;
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overflow-y: auto;
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}
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.chat-message {
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margin-bottom: 10px;
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}
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.chat-message.user {
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text-align: right;
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color: #3498db;
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}
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.chat-message.agent {
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text-align: left;
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color: #e74c3c;
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}
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/* Project Management */
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.project-list {
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background-color: #ecf0f1;
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max-height: 300px;
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overflow-y: auto;
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}
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.project-item {
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margin-bottom: 10px;
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}
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.project-item a {
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color: #3498db;
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text-decoration: none;
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}
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.project-item a:hover {
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text-decoration: underline;
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}
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import sys
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import torch
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from huggingface_hub import hf_hub_url, cached_download, HfApi
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# Access Hugging Face API key from secrets
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hf_token = st.secrets["hf_token"]
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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 'selected_language' not in st.session_state:
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st.session_state.selected_language = "Python"
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# AI Guide Toggle
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ai_guide_level = st.sidebar.radio("AI Guide Level", ["Full Assistance", "Partial Assistance", "No Assistance"])
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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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self._hf_api = HfApi() # Initialize HfApi here
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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 = 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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return agent_prompt
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def autonomous_build(self, chat_history, workspace_projects, project_name, selected_model, hf_token):
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summary = "Chat History:\n" + "\n".join([f"User: {u}\nAgent: {a}" for u, a in chat_history])
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summary += "\n\nWorkspace Projects:\n" + "\n".join([f"{p}: {details}" for p, details in workspace_projects.items()])
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next_step = "Based on the current state, the next logical step is to implement the main application logic."
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return summary, next_step
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def deploy_built_space_to_hf(self):
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# Assuming you have a function that generates the space content
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space_content = generate_space_content(project_name)
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repository = self._hf_api.create_repo(
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repo_type="space",
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token=hf_token
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)
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return repository
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def has_valid_hf_token(self):
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return self._hf_api.whoami(token=hf_token) is not None
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def process_input(input_text):
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chatbot = pipeline("text-generation", model="microsoft/DialoGPT-medium", tokenizer="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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def run_code(code):
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try:
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result = subprocess.run(code, shell=True, capture_output=True, text=True)
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return result.stdout
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except Exception as e:
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return str(e)
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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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else:
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return f"Project '{project_name}' already exists."
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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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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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def display_chat_history(chat_history):
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return "\n".join([f"User: {u}\nAgent: {a}" for u, a in chat_history])
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def display_workspace_projects(workspace_projects):
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return "\n".join([f"{p}: {details}" for p, details in workspace_projects.items()])
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def generate_space_content(project_name):
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# Logic to generate the Streamlit app content based on project_name
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# ... (This is where you'll need to implement the actual code generation)
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return "import streamlit as st\nst.title('My Streamlit App')\nst.write('Hello, world!')"
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def get_code_generation_model(language):
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# Return the code generation model based on the selected language
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if language == "Python":
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return "bigcode/starcoder"
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elif language == "Java":
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return "Salesforce/codegen-350M-mono"
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elif language == "JavaScript":
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return "microsoft/CodeGPT-small"
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else:
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return "bigcode/starcoder"
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+
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+
def generate_code(input_text, language):
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+
# Use the selected code generation model to generate code
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+
model_name = get_code_generation_model(language)
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+
model = pipeline("text2text-generation", model=model_name)
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+
response = model(input_text, max_length=50, num_return_sequences=1)[0]['generated_text']
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+
return response
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if __name__ == "__main__":
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st.sidebar.title("Navigation")
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if st.button("Run"):
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output = run_code(terminal_input)
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st.session_state.terminal_history.append((terminal_input, output))
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+
st.code(output, language="bash")
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if ai_guide_level != "No Assistance":
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+
st.write("Run commands here to add packages to your project. For example: `pip install <package-name>`.")
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if terminal_input and "install" in terminal_input:
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package_name = terminal_input.split("install")[-1].strip()
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+
st.write(f"Package `{package_name}` will be added to your project.")
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elif app_mode == "Explorer":
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st.header("Explorer")
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# Logic to save code
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pass
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if ai_guide_level != "No Assistance":
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+
st.write("The function `foo()` requires the `bar` package. Add it to `requirements.txt`.")
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|
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|
196 |
elif app_mode == "Build & Deploy":
|
197 |
st.header("Build & Deploy")
|
198 |
project_name_input = st.text_input("Enter Project Name for Automation:")
|
199 |
+
selected_language = st.selectbox("Select a programming language:", ["Python", "Java", "JavaScript"])
|
200 |
+
st.session_state.selected_language = selected_language
|
201 |
if st.button("Automate"):
|
202 |
selected_agent = st.selectbox("Select an AI agent", st.session_state.available_agents)
|
203 |
+
selected_model = get_code_generation_model(selected_language)
|
204 |
agent = AIAgent(selected_agent, "", []) # Load the agent without skills for now
|
205 |
summary, next_step = agent.autonomous_build(st.session_state.chat_history, st.session_state.workspace_projects, project_name_input, selected_model, hf_token)
|
206 |
st.write("Autonomous Build Summary:")
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|
208 |
st.write("Next Step:")
|
209 |
st.write(next_step)
|
210 |
if agent._hf_api and agent.has_valid_hf_token():
|
211 |
+
repository = agent.deploy_built_space_to_hf()
|
212 |
st.markdown("## Congratulations! Successfully deployed Space 🚀 ##")
|
213 |
+
st.markdown("[Check out your new Space here](hf.co/" + repository.name + ")")
|
214 |
|
215 |
+
# Code Generation
|
216 |
if ai_guide_level != "No Assistance":
|
217 |
+
code_input = st.text_area("Enter code to generate:", height=300)
|
218 |
+
if st.button("Generate Code"):
|
219 |
+
language = st.session_state.selected_language
|
220 |
+
generated_code = generate_code(code_input, language)
|
221 |
+
st.code(generated_code, language=language)
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|
222 |
|
223 |
# CSS for styling
|
224 |
st.markdown("""
|
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|
231 |
margin: 0;
|
232 |
padding: 0;
|
233 |
}
|
234 |
+
|
235 |
h1, h2, h3, h4, h5, h6 {
|
236 |
color: #333;
|
237 |
}
|
238 |
+
|
239 |
.container {
|
240 |
width: 90%;
|
241 |
margin: 0 auto;
|
242 |
padding: 20px;
|
243 |
}
|
244 |
+
|
245 |
/* Navigation Sidebar */
|
246 |
.sidebar {
|
247 |
background-color: #2c3e50;
|
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|
254 |
width: 250px;
|
255 |
overflow-y: auto;
|
256 |
}
|
257 |
+
|
258 |
.sidebar a {
|
259 |
color: #ecf0f1;
|
260 |
text-decoration: none;
|
261 |
display: block;
|
262 |
padding: 10px 0;
|
263 |
}
|
264 |
+
|
265 |
.sidebar a:hover {
|
266 |
background-color: #34495e;
|
267 |
border-radius: 5px;
|
268 |
}
|
269 |
+
|
270 |
/* Main Content */
|
271 |
.main-content {
|
272 |
margin-left: 270px;
|
273 |
padding: 20px;
|
274 |
}
|
275 |
+
|
276 |
/* Buttons */
|
277 |
button {
|
278 |
background-color: #3498db;
|
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|
283 |
cursor: pointer;
|
284 |
font-size: 16px;
|
285 |
}
|
286 |
+
|
287 |
button:hover {
|
288 |
background-color: #2980b9;
|
289 |
}
|
290 |
+
|
291 |
/* Text Areas and Inputs */
|
292 |
textarea, input[type="text"] {
|
293 |
width: 100%;
|
|
|
297 |
border-radius: 5px;
|
298 |
box-sizing: border-box;
|
299 |
}
|
300 |
+
|
301 |
textarea:focus, input[type="text"]:focus {
|
302 |
border-color: #3498db;
|
303 |
outline: none;
|
304 |
}
|
305 |
+
|
306 |
/* Terminal Output */
|
307 |
.code-output {
|
308 |
background-color: #1e1e1e;
|
|
|
311 |
border-radius: 5px;
|
312 |
font-family: 'Courier New', Courier, monospace;
|
313 |
}
|
314 |
+
|
315 |
/* Chat History */
|
316 |
.chat-history {
|
317 |
background-color: #ecf0f1;
|
|
|
320 |
max-height: 300px;
|
321 |
overflow-y: auto;
|
322 |
}
|
323 |
+
|
324 |
.chat-message {
|
325 |
margin-bottom: 10px;
|
326 |
}
|
327 |
+
|
328 |
.chat-message.user {
|
329 |
text-align: right;
|
330 |
color: #3498db;
|
331 |
}
|
332 |
+
|
333 |
.chat-message.agent {
|
334 |
text-align: left;
|
335 |
color: #e74c3c;
|
336 |
}
|
337 |
+
|
338 |
/* Project Management */
|
339 |
.project-list {
|
340 |
background-color: #ecf0f1;
|
|
|
343 |
max-height: 300px;
|
344 |
overflow-y: auto;
|
345 |
}
|
346 |
+
|
347 |
.project-item {
|
348 |
margin-bottom: 10px;
|
349 |
}
|
350 |
+
|
351 |
.project-item a {
|
352 |
color: #3498db;
|
353 |
text-decoration: none;
|
354 |
}
|
355 |
+
|
356 |
.project-item a:hover {
|
357 |
text-decoration: underline;
|
358 |
}
|