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Forecasting potential misuses of language models for disinformation campaigns and how to reduce risk

OpenAI researchers collaborated with Georgetown University’s Center for Security and Emerging Technology and the Stanford Internet Observatory to investigate how large language models might be misused for disinformation purposes. The collaboration included an October 2021 workshop bringing together...

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Creating next-gen characters

Using GPT-3 to create the next generation of AI-powered characters.

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New and improved embedding model

We are excited to announce a new embedding model which is significantly more capable, cost effective, and simpler to use.

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Introducing ChatGPT

We’ve trained a model called ChatGPT which interacts in a conversational way. The dialogue format makes it possible for ChatGPT to answer followup questions, admit its mistakes, challenge incorrect premises, and reject inappropriate requests.

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DALLΒ·E now available without waitlist

New users can start creating straight away. Lessons learned from deployment and improvements to our safety systems make wider availability possible.

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Introducing Whisper

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

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Our approach to alignment research

We are improving our AI systems’ ability to learn from human feedback and to assist humans at evaluating AI. Our goal is to build a sufficiently aligned AI system that can help us solve all other alignmentΒ problems.

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New and improved content moderation tooling

We are introducing a new and improved content moderation tool. TheΒ Moderation endpointΒ improves upon our previous content filter, and is available for free today to OpenAI APIΒ developers.

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DALLΒ·E now available in beta

We’ll invite 1 million people from our waitlist over the coming weeks. Users can create with DALLΒ·E using free credits that refill every month, and buy additional credits in 115-generation increments forΒ $15.

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Reducing bias and improving safety in DALLΒ·E 2

Today, we are implementing a new technique so that DALLΒ·E generates images of people that more accurately reflect the diversity of the world’s population.

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DALLΒ·E 2: Extending creativity

As part of our DALLΒ·E 2 research preview, more than 3,000 artists from more than 118 countries have incorporated DALLΒ·E into their creative workflows. The artists in our early access group have helped us discover new uses for DALLΒ·E and have served as key voices as we’ve made decisions about DALLΒ·E’...

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DALLΒ·E 2 pre-training mitigations

In order to share the magic ofΒ DALLΒ·E 2Β with a broad audience, we needed to reduce the risks associated with powerful image generation models. To this end, we put variousΒ guardrailsΒ in place to prevent generated images from violating ourΒ content policy.

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Learning to play Minecraft with Video PreTraining

We trained a neural network to play Minecraft by Video PreTraining (VPT) on a massive unlabeled video dataset of human Minecraft play, while using only a small amount of labeled contractor data. With fine-tuning, our model can learn to craft diamond tools, a task that usually takes proficient humans...

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AI-written critiques help humans notice flaws

We trained β€œcritique-writing” models to describe flaws in summaries. Human evaluators find flaws in summaries much more often when shown our model’s critiques. Larger models are better at self-critiquing, with scale improving critique-writing more than summary-writing. This shows promise for using A...

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Techniques for training large neural networks

Large neural networks are at the core of many recent advances in AI, but training them is a difficult engineering and research challenge which requires orchestrating a cluster of GPUs to perform a single synchronized calculation.

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Best practices for deploying language models

Cohere, OpenAI, and AI21 Labs have developed a preliminary set of best practices applicable to any organization developing or deploying large language models.

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