Remove 2016 Remove Deep Learning Remove Natural Language Processing
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Has AI Taken Over the World? It Already Has

Unite.AI

GPUs, originally developed for rendering graphics, became essential for accelerating data processing and advancing deep learning. This period saw AI expand into applications like image recognition and natural language processing, transforming it into a practical tool capable of mimicking human intelligence.

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Complete Beginner’s Guide to Hugging Face LLM Tools

Unite.AI

These are deep learning models used in NLP. This discovery fueled the development of large language models like ChatGPT. Large language models or LLMs are AI systems that use transformers to understand and create human-like text. Hugging Face , started in 2016, aims to make NLP models accessible to everyone.

LLM 342
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AI Acquisitions: Who’s Leading the Charge and Why?

Unite.AI

Apple prioritizes computer vision , natural language processing , voice recognition, and healthcare to enhance its products. Google focuses on expanding AI in search, advertising, cloud, healthcare, and education, with a particular emphasis on deep learning. for natural language and speech expertise.

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Mastering Visual Question Answering with Deep Learning and Natural Language Processing: A Pocket-friendly Guide

John Snow Labs

Visual question answering (VQA), an area that intersects the fields of Deep Learning, Natural Language Processing (NLP) and Computer Vision (CV) is garnering a lot of interest in research circles. For visual question answering in Deep Learning using NLP, public datasets play a crucial role.

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Commonsense Reasoning for Natural Language Processing

Probably Approximately a Scientific Blog

In the last 5 years, popular media has made it seem that AI is nearly if not already solved by deep learning, with reports on super-human performance on speech recognition, image captioning, and object recognition. Figure 1: adversarial examples in computer vision (left) and natural language processing tasks (right).

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Responsible AI: The Crucial Role of AI Watchdogs in Countering Election Disinformation

Unite.AI

In the context of the electoral process, AI watchdogs are symbolized as AI-based systems to combat instances of disinformation to uphold the integrity of elections. Looking back at the recent past, the 2016 US presidential election result makes us explore what influenced voters' decisions.

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Introducing NYU Center for Data Science Research Groups

NYU Center for Data Science

The group was first launched in 2016 by Associate Professor of Computer Science, Data Science and Mathematics Joan Bruna , and Associate Professor of Mathematics and Data Science and incoming CDS Interim Director Carlos Fernandez-Granda with the goal of advancing the mathematical and statistical foundations of data science.