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What does it do?

  • Bilingual Chatbots
  • Virtual Assistants
  • Language Learning
  • Customer Service
  • Natural Language Understanding

How is it used?

  • Python interface for text input
  • generates bilingual responses.
  • 1. Load tokenizer & model
  • 2. Generate response w/ history
  • 3. Continue conversation
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Who is it good for?

  • Developers
  • Researchers
  • Customer Service Professionals
  • Language Educators
  • Chatbot Enthusiasts

What does it cost?

  • Pricing model : Open Source

Details & Features

  • Made By

    Tsinghua
  • Released On

ChatGLM-6B is an open-source bilingual dialogue language model that supports Chinese and English question-answering and dialogue tasks. This AI software enables developers and researchers to create applications capable of understanding and generating human-like responses in both languages.

Key features:
- Bilingual Support: Understands and generates text in both Chinese and English for multilingual applications.
- Efficient Deployment: Can be deployed locally on consumer-grade graphics cards, requiring only 6GB of GPU memory at INT4 quantization.
- Advanced Training: Trained on approximately 1 trillion tokens of Chinese and English text using supervised fine-tuning, feedback bootstrap, and reinforcement learning with human feedback.
- Open Access: Model weights are fully open for academic research, with free commercial use allowed after completing a questionnaire.
- User-Friendly Interaction: Accessible for developers and researchers through simple Python code.

How it works:
1. Load the tokenizer and model using the Transformers library.
2. Generate a response by calling the chat method with a user input and empty history.
3. Continue the conversation by passing subsequent inputs along with the conversation history.

Integrations:
Chatbots, Virtual Assistants, Educational Tools

Use of AI:
ChatGLM-6B uses generative artificial intelligence to produce coherent and contextually appropriate responses in both Chinese and English.

AI foundation model:
The model is built on the General Language Model (GLM) framework, designed for large-scale language modeling tasks. It has been trained on a significant amount of bilingual data.

Target users:
- Researchers
- Developers
- Businesses implementing advanced bilingual dialogue systems
- Academic institutions

How to access:
ChatGLM-6B is available as a Python package and can be accessed via the Hugging Face platform. It is open-source, allowing for extensive customization and integration.

Model specifications:
- Parameters: 6.2 billion
- Quantization: INT4 level supported for efficient deployment

  • Supported ecosystems
    Hugging Face, Hugging Face, GitHub
  • What does it do?
    Bilingual Chatbots, Virtual Assistants, Language Learning, Customer Service, Natural Language Understanding
  • Who is it good for?
    Developers, Researchers, Customer Service Professionals, Language Educators, Chatbot Enthusiasts

PRICING

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Pricing model: Open Source

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