Efficient training of language models to fill in the middle
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Weβll 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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Today, we are implementing a new technique so that DALLΒ·E generates images of people that more accurately reflect the diversity of the worldβs population.
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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 weβve made decisions about DALLΒ·Eβ...
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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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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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We trained βcritique-writingβ models to describe flaws in summaries. Human evaluators find flaws in summaries much more often when shown our modelβs 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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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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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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Codex is now powering 70 different applications across a variety of use cases through the OpenAIΒ API.
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Early users have created over 3 million images to date and helped us improve our safety processes. Weβre excited to begin adding up to 1,000 new users from our waitlist each week.Β
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Weβre happy to announce several executive role changes that reflect our recent progress and will ensure continued momentum toward our next majorΒ milestones.
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Goodhartβs lawΒ famously says: βWhen a measure becomes a target, it ceases to be a good measure.β Although originally from economics, itβs something we have to grapple with at OpenAI when figuring out how to optimize objectives that are difficult or costly to measure.
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Weβve released new versions of GPT-3 and CodexΒ which can edit or insert content into existing text, rather than just completing existing text.
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We describe our latest thinking in the hope of helping other AI developers address safety and misuse of deployedΒ models.
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Call for expressions of interest to study the economic impacts of large languageΒ models.
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We built a neural theorem prover forΒ LeanΒ that learned to solve a variety of challenging high-school olympiad problems, including problems from theΒ AMC12Β andΒ AIMEΒ competitions, as well as two problems adapted from theΒ IMO.
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We are introducing embeddings, a new endpoint in the OpenAI API that makes it easy to perform natural language and code tasks like semantic search, clustering, topic modeling, and classification.
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Weβve fine-tuned GPT-3 to more accurately answer open-ended questions using a text-based web browser.
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Fine-tune with a singleΒ command.
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As part of our effort to support and develop AI talent, weβre excited to announce the OpenAI Residency.
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Wider availability made possible by safetyΒ progress.
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Weβve trainedΒ a system that solves grade school math problems with nearly twice the accuracy of a fine-tuned GPT-3 model. It solves about 90% as many problems as real kids: a small sample of 9-12 year olds scored 60% on a test from our dataset, while our system scored 55% on those same problems.
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