AI-Powered Web-Based Mental Health Support System

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AI-Powered Web-Based Mental Health Support System

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  • Proposal for BGI Nexus 1
  • Funding Request $50,000 USD
  • Funding Pools Beneficial AI Solutions
  • Total 4 Milestones

Overview

An AI-powered web-based platform that provides real-time AI-driven mental health support. The system offers sentiment analysis, chatbot-driven cognitive behavioral therapy (CBT), self-assessment tools, and a mental wellness tracker to support individuals facing emotional distress.

Proposal Description

How Our Project Will Contribute To The Growth Of The Decentralized AI Platform

This project aligns with BGI’s mission by promoting well-being and ethical AI applications. The AI-powered mental health assistant ensures that individuals, regardless of financial background or location, can access mental health support. The ethical and responsible deployment of AI ensures the system minimizes potential risks and maximizes social benefit.

Our Team

  • Mukarram Nawaz: AI & Data Science Lead (LinkedIn)

  • Hamza Javed: Software Engineer & ML Developer (LinkedIn)

  • Ayesha Raza Toor: Research & Project Management (LinkedIn)

AI services (New or Existing)

Mental Health Support

Type

New AI service

Purpose

Provide AI-driven emotional and mental health support through a web-based platform with AI-powered sentiment analysis therapy chatbots and mood tracking.

AI inputs

User text inputs voice input (optional) sentiment analysis data behavioral patterns from self-assessment tools.

AI outputs

Mood classification AI-generated therapy recommendations progress tracking reports and chatbot-driven mental wellness guidance.

Company Name (if applicable)

TechnicalExperts4u

The core problem we are aiming to solve

Mental health issues are rising globally, but access to professional therapy remains limited due to financial, social, and geographical barriers. Many individuals suffer from stress, anxiety, and depression without easy access to resources. This AI-driven web platform aims to bridge that gap by providing personalized, confidential, and real-time mental health assistance.

Our specific solution to this problem

Our AI-Powered Web-Based Mental Health Support System offers a scalable, AI-driven, and easily accessible solution for addressing the global mental health crisis. Unlike traditional therapy models that rely on human intervention, our platform leverages AI-powered sentiment analysis, therapy chatbots, and self-assessment tools to provide real-time, personalized mental health support to individuals worldwide.

Key Differentiators & Specific Features

  1. AI-Powered Chatbot for Cognitive Behavioral Therapy (CBT)

    • Users interact with an AI-driven chatbot trained in CBT techniques to receive structured mental health support.
    • The chatbot provides guided exercises, coping strategies, and personalized interventions based on user responses.
  2. Sentiment Analysis & Mood Tracking

    • AI analyzes text-based user inputs to classify emotions (e.g., stress, anxiety, depression) and adjust recommendations accordingly.
    • The system tracks mood patterns over time and generates progress reports, allowing users to monitor their emotional well-being.
  3. Personalized Mental Health Assistance

    • Users complete a self-assessment questionnaire, and the AI personalizes recommendations based on behavioral patterns and mood history.
    • The AI dynamically adjusts suggestions for meditation, journaling, relaxation techniques, and coping exercises.
  4. Anonymous Peer Support Groups (Optional Feature)

    • The platform enables community-driven discussions where users can share experiences anonymously and support each other.

Project details

Project Details:

  • Objectives:

    • Develop an AI chatbot that offers real-time cognitive behavioral therapy (CBT) sessions.

    • Implement an AI-powered sentiment analysis engine to track user emotions.

    • Create a web-based mental health dashboard with interactive self-assessment tools.

    • Ensure scalability by integrating multilingual support and region-specific recommendations.

  • Integrations:

    • AI/ML models for sentiment analysis and therapy recommendations.

    • Natural Language Processing (NLP) to interpret user conversations and provide meaningful responses.

  • Real-time Interventions:

    • Instant chatbot-driven guidance based on real-time sentiment analysis.

    • Emergency support contact suggestions for high-risk emotional states.

    • AI-driven self-help exercises tailored to user moods and behaviors.

  • Scalability and Accessibility:

    • Cloud-based deployment for global access.

    • Web-based interface accessible via desktop and mobile.

    • Support for multiple languages and culturally sensitive recommendations.

      Key Use Cases:

      • Individuals suffering from stress, anxiety, or depression seeking AI-assisted guidance.

      • Employers integrating AI-driven mental wellness tools for employee well-being.

      • Schools and universities providing AI-powered mental health support for students.

      • Healthcare professionals using AI-generated emotional assessments for patient screening.

Open Source Licensing

MIT - Massachusetts Institute of Technology License

Links and references

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Proposal Video

Placeholder for Spotlight Day Pitch-presentations. Video's will be added by the DF team when available.

  • Total Milestones

    4

  • Total Budget

    $50,000 USD

  • Last Updated

    23 Feb 2025

Milestone 1 - Foundational Research and Dataset Collection

Description

Conduct market research on AI-driven mental health solutions. Collect and curate mental health datasets for AI model training.

Deliverables

Research report and dataset documentation.

Budget

$10,000 USD

Success Criterion

Completion of dataset collection with labeled entries.

Milestone 2 - AI Model Development

Description

Train NLP models on mental health datasets to detect stress anxiety and mood variations. Develop chatbot algorithms for cognitive behavioral therapy (CBT) recommendations.

Deliverables

AI model performance report chatbot prototype.

Budget

$12,500 USD

Success Criterion

Sentiment analysis model achieves at least 80% accuracy in emotional classification.

Milestone 3 - Web-Based Platform Development

Description

Create a user-friendly web interface for AI-driven mental health assessments. Develop interactive mood-tracking dashboards and self-help exercises.

Deliverables

Beta version of web-based mental health assistant.

Budget

$12,500 USD

Success Criterion

Functional chatbot and self-assessment tool tested with users.

Milestone 4 - Public Launch & Impact Measurement

Description

Deploy the platform for public access with privacy and security measures. Conduct data analysis on the platform’s impact on user mental health improvement.

Deliverables

Fully launched platform with impact assessment.

Budget

$15,000 USD

Success Criterion

Positive feedback from active users.

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