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This collection demonstrates how to help you to quickly embed Watson NLP in your own applications.

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Embeddable AI Self-Serve Assets using NLP Library

Assets/Accelerators for Watson NLP (this repo) contains self-serve notebooks and documentation on how to create NLP models using Watson NLP library, how to serve Watson NLP models, and how to make inference requests from custom applications. With an IBM Cloud account a full production sample can be deployed in roughly one hour.

Key Technologies:

  • IBM Watson NLP (Natural Language Processing) comes with a wide variety of text processing capabilities, such as emotion analysis and topic modeling. Watson NLP is built on top of the best AI open source software. It provides stable and supported interfaces, it handles a wide range of languages and its quality is enterprise proven. The Watson NLP containers can be deployed with Docker, on various Kubernetes-based platforms, or using cloud-based container services.

Outline

Machine Learning notebooks, tutorials, and datasets focused on supporting a Data Science Engineer are under the ML folder. Assets focused on deployment are under the MLOps folder. Go to the respective folders to learn more about these assets.

Resources

Team

Created & Architected By

Kunal Sawarkar, Chief Data Scientist

Builders

Michael Spriggs, Principal Architect Shivam Solanki, Senior Advisory Data Scientist Kevin Huang, Sr. ML-Ops Engineer Abhilasha Mangal, Senior Data Scientist Himadri Talukder - Senior Software Engineer

Disclaimer

This framework is developed by Build Lab, IBM Ecosystem. Please note that this content is made available to foster Embeddable AI technology adoption and serve ecosystem partners. The content may include systems & methods pending patent with the USPTO and protected under US Patent Laws. SuperKnowa is not a product but a framework built on the top of IBM watsonx along with other products like LLAMA models from Meta & ML Flow from Databricks. Using SuperKnowa implicitly requires agreeing to the Terms and conditions of those products. This framework is made available on an as-is basis to accelerate Enterprise GenAI applications development. In case of any questions, please reach out to [email protected].

Copyright @ 2023 IBM Corporation.