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Pioneering research on the path to AGI

We believe our research will eventually lead to artificial
general intelligence, a system that can solve human-level
problems. Building safe and beneficial AGI is our mission.

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“Safely aligning powerful AI systems is one of the most important
unsolved problems for our mission. Techniques like learning from
human feedback are helping us get closer, and we are actively
researching new techniques to help us fill the gaps.”

Josh Achiam, Researcher at OpenAI

Focus areas

We build our generative models using a technology called deep learning,
which leverages large amounts of data to train an AI system to perform a task.

Text

Our text models are advanced language processing tools that can generate,
classify, and summarize text with high levels of coherence and accuracy.

Aligning language models to follow instructions

We’ve trained language models
that are much better at following
user intentions than GPT-3.

Summarizing books with human feedback

We've trained a model to summarize entire books with human feedback.

Language models are few-shot learners

We trained GPT-3, an autoregressive language model with 175 billion parameters.

Image

Our research on generative modeling for images has led to representation
models like CLIP, which makes a map between text and images that an AI
can read, and DALL-E, a tool for creating vivid images from text descriptions.

Hierarchical text-conditional image generation with CLIP latents 

We show that explicitly generating image representations improves image diversity with minimal loss in photorealism and caption similarity.

DALL·E: Creating images from text

We’ve trained a neural network called DALL·E that creates images from text captions for a wide range of concepts expressible in natural langage.

CLIP: Connecting text and images

We’re introducing a neural network called CLIP which efficiently learns visual concepts from natural language supervision.

Audio

Our research on applying AI to audio processing and audio generation has led to
developments in automatic speech recognition and original musical compositions.

Product 

Navigating the challenges and
opportunities of synthetic voices

Introducing Whisper

We’ve trained and are open-sourcing a neural net that approaches human level robustness and accuracy on English speech recognition.

Our current AI research builds upon a wealth of previous projects and advances.

Research Jun 17, 2020

 Image GPT 

Research Oct 15, 2019

Solving Rubik’s Cube with a robot hand

Research Sep 17, 2019

Emergent tool use from multi-agent interaction

Past highlights

Research
Overview
GPT-4
DALL·E 3

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