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Chandrakasan Named MIT's Chief Innovation And Strategy Officer - Vimarsana News

Chandrakasan Named MIT's Chief Innovation And Strategy Officer

Chandrakasan Named MIT’s Chief Innovation And Strategy Officer.

Robust AI Model That Constantly Learns New User Data - Vimarsana News

Robust AI Model That Constantly Learns New User Data

Artificial intelligence chatbots that can adjust to comprehend a user’s accent or smart keyboards that constantly update to more accurately guess the next word based on a user’s typing history can be made possible by personalized deep-learning models. A machine-learning model must constantly be adjusted with new data to accommodate this personalization.

Technique enables AI on edge devices to keep learning over time - Vimarsana News

Technique enables AI on edge devices to keep learning over time

The PockEngine technique enables deep learning models, like those that underlie AI chatbots or smart keyboards, to efficiently and continuously learn from new user data directly on an edge device like a smartphone.

Source: mit.edu
New techniques efficiently accelerate sparse - Vimarsana News

New techniques efficiently accelerate sparse

New computational techniques, “HighLight” and “Tailors and Swiftiles,” could dramatically boost the speed and performance of high-performance computing applications like graph analytics or generative AI. The work, from MIT and NIVIDIA, aims to accelerate sparse tensors for AI models by introducing more efficient and flexible ways to take advantage of sparsity.

New techniques efficiently accelerate sparse tensors for massive AI models - Vimarsana News

New techniques efficiently accelerate sparse tensors for massive AI models

New computational techniques, “HighLight” and “Tailors and Swiftiles,” could dramatically boost the speed and performance of high-performance computing applications like graph analytics or generative AI. The work, from MIT and NIVIDIA, aims to accelerate sparse tensors for AI models by introducing more efficient and flexible ways to take advantage of sparsity.

Source: mit.edu