| import streamlit as st |
| from interm import generate_clinical_content, generate_summary, generate_soap_note, fetch_pubmed_articles, save_as_text, save_as_pdf |
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| |
| st.set_page_config(page_title="Clinical AI Assistant", page_icon="π©Ί", layout="wide") |
|
|
| st.title("π©Ί AI-Powered Clinical Intelligence Assistant") |
| st.write("AI-driven **clinical research, medical documentation, and PubMed insights**.") |
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| |
| tabs = st.tabs(["π Clinical Content", "π Research Summaries", "π©Ί SOAP Notes", "π PubMed Research", "π Medical Reports"]) |
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| |
| with tabs[0]: |
| st.header("Generate Medical Articles & Patient Education") |
| |
| prompt = st.text_area("Enter a Medical Topic (e.g., AI in Radiology, Hypertension Management):") |
| target_audience = st.selectbox("Select Audience:", ["Clinicians", "Patients", "Researchers"]) |
|
|
| if st.button("Generate Content"): |
| if prompt: |
| with st.spinner("Generating medical content..."): |
| result = generate_clinical_content(prompt, target_audience) |
| st.session_state["medical_content"] = result |
| st.subheader("Generated Medical Content") |
| st.write(result) |
| else: |
| st.warning("Please enter a medical topic.") |
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|
| |
| with tabs[1]: |
| st.header("Summarize Clinical Trials & Medical Research") |
|
|
| if "medical_content" in st.session_state: |
| if st.button("Generate Summary"): |
| with st.spinner("Summarizing medical research..."): |
| summary = generate_summary(st.session_state["medical_content"]) |
| st.session_state["research_summary"] = summary |
| st.subheader("Clinical Summary") |
| st.markdown(summary) |
| else: |
| st.warning("Generate content in Tab 1 first.") |
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| |
| with tabs[2]: |
| st.header("Generate SOAP Notes for Patient Consultations") |
|
|
| symptoms = st.text_area("Enter Symptoms (e.g., fever, cough, chest pain):") |
| patient_history = st.text_area("Brief Patient History:") |
|
|
| if st.button("Generate SOAP Note"): |
| if symptoms: |
| with st.spinner("Generating SOAP Note..."): |
| soap_note = generate_soap_note(symptoms, patient_history) |
| st.session_state["soap_note"] = soap_note |
| st.subheader("Generated SOAP Note") |
| st.code(soap_note, language="text") |
| else: |
| st.warning("Please enter patient symptoms.") |
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| |
| with tabs[3]: |
| st.header("Fetch Latest Research from PubMed") |
|
|
| query = st.text_input("Enter a medical keyword (e.g., COVID-19, AI in Oncology, Diabetes):") |
|
|
| if st.button("Fetch PubMed Articles"): |
| if query: |
| with st.spinner("Retrieving PubMed articles..."): |
| articles = fetch_pubmed_articles(query) |
| st.session_state["pubmed_results"] = articles |
| for article in articles: |
| st.subheader(article["title"]) |
| st.write(f"**Authors:** {article['authors']}") |
| st.write(f"**Abstract:** {article['abstract']}") |
| st.write(f"[Read More]({article['url']})") |
| else: |
| st.warning("Please enter a medical topic.") |
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|
| |
| with tabs[4]: |
| st.header("Download Clinical Reports") |
|
|
| if "soap_note" in st.session_state: |
| report_content = st.session_state["soap_note"] |
| text_file_path, text_filename = save_as_text(report_content, "Medical_Report.txt") |
| pdf_file_path, pdf_filename = save_as_pdf(report_content, "Medical_Report.pdf") |
|
|
| with open(text_file_path, "rb") as file: |
| st.download_button("Download Report as TXT", data=file, file_name=text_filename, mime="text/plain") |
|
|
| with open(pdf_file_path, "rb") as file: |
| st.download_button("Download Report as PDF", data=file, file_name=pdf_filename, mime="application/pdf") |
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