What is AI inferencing? - IBM Research Part of the Linux Foundation, PyTorch is a machine-learning framework that ties together software and hardware to let users run AI workloads in the hybrid cloud One of PyTorch’s key advantages is that it can run AI models on any hardware backend: GPUs, TPUs, IBM AIUs, and traditional CPUs
Matthew Wilson - IBM Research I've worked as a Software Engineer for over 15 years, across a broad range of technologies such as IBM Z, CICS, Event-driven architectures, OpenShift, Robotic Process Automation and Machine learning I joined IBM Research in 2023, focussing on Foundation Models for Accelerated Discovery My research interests include inference serving and fine-tuning stacks, explainable AI and learning methods
What are foundation models? - IBM Research What makes these new systems foundation models is that they, as the name suggests, can be the foundation for many applications of the AI model Using self-supervised learning and transfer learning, the model can apply information it’s learnt about one situation to another
Artificial Intelligence - IBM Research AI for Code AI for Supply Chain AI Testing Automated AI Causality Computer Vision Conversational AI Explainable AI Fairness, Accountability, Transparency Foundation Models Generative AI Granite Human-Centered AI Knowledge and Reasoning Machine Learning Natural Language Processing Neuro-symbolic AI Speech Trustworthy AI Trustworthy Generation
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Quantum Machine Learning: An Interplay Between Quantum Computing and . . . Quantum machine learning (QML) is a rapidly growing field that combines quantum computing principles with traditional machine learning It seeks to revolutionize machine learning by harnessing the unique capabilities of quantum mechanics and employs machine learning techniques to advance quantum computing research This paper presents an overview of quantum computing for the machine learning
Snap machine learning - IBM Research A library that provides high-speed training of popular machine learning models on modern CPU GPU computing systems
Introducing AI Fairness 360 - IBM Research Machine learning models are increasingly used to inform high-stakes decisions about people Although machine learning, by its very nature, is always a form of statistical discrimination, the discrimination becomes objectionable when it places certain privileged groups at systematic advantage and certain unprivileged groups at systematic disadvantage Bias in training data, due to either
Machine Learning for Practical Quantum Error Mitigation We benchmark a variety of machine learning models---linear regression, random forests, multi-layer perceptrons, and graph neural networks---on diverse classes of quantum circuits, over increasingly complex device-noise profiles, under interpolation and extrapolation, and for small and large quantum circuits