Spaces:
Sleeping
Sleeping
Blog Generator Agent
Browse files- .github/workflows/main.yaml +24 -0
- app.py +162 -0
- requirements.txt +8 -0
.github/workflows/main.yaml
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name: Sync to Hugging Face Space
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on:
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push:
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branches: [main]
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# to run this workflow manually from the Actions tab
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workflow_dispatch:
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jobs:
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sync-to-hub:
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runs-on: ubuntu-latest
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steps:
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- uses: actions/checkout@v3
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with:
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fetch-depth: 0
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lfs: false
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- name: Ignore large files
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run : git filter-branch --index-filter 'git rm -rf --cached --ignore-unmatch' HEAD
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- name: Push to hub
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env:
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HF_TOKEN: ${{ secrets.HF_TOKEN }}
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run: git push --force https://msaifee:$HF_TOKEN@huggingface.co/spaces/msaifee/BlogGeneratorAgent main
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app.py
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import streamlit as st
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from dotenv import load_dotenv
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import os
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from langchain_groq import ChatGroq
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from typing_extensions import TypedDict
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from langgraph.graph import add_messages, StateGraph, END, START
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from langchain_core.messages import AIMessage, HumanMessage
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from typing import Annotated, List
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# Load environment variables
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load_dotenv()
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# Set up Groq client
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os.environ["GROQ_API_KEY"] = os.getenv("GROQ_API_KEY")
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llm = ChatGroq(model="qwen-2.5-32b")
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# Define BlogState TypedDict
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class BlogState(TypedDict):
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topic: str
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title: str
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blog_content: Annotated[List, add_messages]
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reviewed_content: Annotated[List, add_messages]
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is_blog_ready: str
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# Initialize session state
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if 'blog_state' not in st.session_state:
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st.session_state.blog_state = None
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if 'graph' not in st.session_state:
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st.session_state.graph = None
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def init_graph():
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builder = StateGraph(BlogState)
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builder.add_node("title_generator", generate_title)
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builder.add_node("content_generator", generate_content)
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builder.add_node("content_reviewer", review_content)
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builder.add_node("quality_check", evaluate_content)
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builder.add_edge(START, "title_generator")
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builder.add_edge("title_generator", "content_generator")
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builder.add_edge("content_generator", "content_reviewer")
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builder.add_edge("content_reviewer", "quality_check")
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builder.add_conditional_edges(
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"quality_check",
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route_based_on_verdict,
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{"Pass": END, "Fail": "content_generator"}
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)
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return builder.compile()
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# Node functions with state management
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def generate_title(state: BlogState):
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prompt = f"""Generate compelling blog title options about {state["topic"]} that are:
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- SEO-friendly
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- Attention-grabbing
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- Between 6-12 words"""
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with st.status("π Generating Titles..."):
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response = llm.invoke(prompt)
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state["title"] = response.content.split("\n")[0].strip('"')
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st.write(f"Selected title: **{state['title']}**")
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return state
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def generate_content(state: BlogState):
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prompt = f"""Write a comprehensive blog post titled "{state["title"]}" with:
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1. Engaging introduction with hook
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2. 3-5 subheadings with detailed content
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3. Practical examples/statistics
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4. Clear transitions between sections
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5. Actionable conclusion
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Style: Professional yet conversational (Flesch-Kincaid 60-70). Use markdown formatting"""
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with st.status("π Generating Content..."):
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response = llm.invoke(prompt)
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state["blog_content"].append(AIMessage(content=response.content))
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st.markdown(response.content)
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return state
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def review_content(state: BlogState):
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content = state["blog_content"][-1].content
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prompt = f"""Critically review this blog content:
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- Clarity & Structure
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- Grammar & Style
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- SEO optimization
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- Reader engagement
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Provide specific improvement suggestions. Content:\n{content}"""
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with st.status("π Reviewing Content..."):
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feedback = llm.invoke(prompt)
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state["reviewed_content"].append(HumanMessage(content=feedback.content))
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st.write(feedback.content)
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return state
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def evaluate_content(state: BlogState):
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content = state["blog_content"][-1].content
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feedback = state["reviewed_content"][-1].content
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prompt = f"""Evaluate blog content against editorial feedback (Pass/Fail):
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Content: {content}
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Feedback: {feedback}
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Answer only Pass or Fail:"""
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with st.status("β
Evaluating Quality..."):
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response = llm.invoke(prompt)
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verdict = response.content.strip().upper()
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state["is_blog_ready"] = "Pass" if "PASS" in verdict else "Fail"
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state["reviewed_content"].append(AIMessage(
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content=f"Verdict: {response.content}"
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))
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st.write(f"Final Verdict: **{state['is_blog_ready']}**")
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return state
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def route_based_on_verdict(state: BlogState):
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return "Pass" if state["is_blog_ready"] == "Pass" else "Fail"
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# Streamlit UI components
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st.title("AI Blog Generation Assistant")
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st.markdown("### Generate high-quality blog posts with AI-powered review process")
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topic = st.text_input("Enter your blog topic:", placeholder="Generative AI in Healthcare")
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generate_btn = st.button("Generate Blog Post")
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if generate_btn and topic:
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st.session_state.graph = init_graph()
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st.session_state.blog_state = BlogState(
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topic=topic,
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title="",
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blog_content=[],
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reviewed_content=[],
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is_blog_ready=""
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)
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# Execute the graph
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final_state = st.session_state.graph.invoke(st.session_state.blog_state)
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st.session_state.blog_state = final_state
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# Display results
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st.success("Blog post generation complete!")
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st.markdown("---")
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st.subheader("Final Blog Post")
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st.markdown(final_state["blog_content"][-1].content)
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st.markdown("---")
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st.subheader("Quality Assurance Report")
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st.write(final_state["reviewed_content"][-1].content)
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# st.write(f"Final Verdict: {final_state['is_blog_ready']}")
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elif generate_btn and not topic:
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st.error("Please enter a blog topic to get started!")
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if st.session_state.blog_state:
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with st.sidebar:
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st.subheader("Generation Details")
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st.write(f"**Topic:** {st.session_state.blog_state['topic']}")
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st.write(f"**Status**: {'β
Approved' if st.session_state.blog_state['is_blog_ready'] == 'Pass' else 'β Needs Revision'}")
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st.write(f"**Review Cycles**: {len(st.session_state.blog_state['reviewed_content']) - 1}")
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if st.button("Reset Session"):
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st.session_state.clear()
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st.rerun()
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requirements.txt
ADDED
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@@ -0,0 +1,8 @@
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| 1 |
+
langchain
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| 2 |
+
langgraph
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langchain_community
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langchain_core
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langchain_groq
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langchain_openai
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faiss_cpu
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streamlit
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