Introducing Astra for Law
OpenAI's GPT-6 Astra enters legal markets with a dedicated vertical product, threatening incumbents like Thomson Reuters.
- 01OpenAI's Astra for Law pairs GPT-6 Astra with a proprietary legal search index spanning over 230 million URLs and 99.9% of published U.S.
- 02On independent benchmarks, it outperformed base GPT-6 by 40% on research correctness and surfaced up to 54% more relevant passages.
- 03Harvey and Legora gain API access; 26 ecosystem plugins connect to Relativity and Clio.
- 04Enhanced confidentiality controls target law firms handling sensitive client matters.
OpenAI's GPT-6 Astra enters legal markets with a dedicated vertical product, threatening incumbents like Thomson Reuters.
OpenAI's Astra for Law pairs GPT-6 Astra with a proprietary legal search index spanning over 230 million URLs and 99.9% of published U.S. precedential case law. On independent benchmarks, it outperformed base GPT-6 by 40% on research correctness and surfaced up to 54% more relevant passages. Harvey and Legora gain API access; 26 ecosystem plugins connect to Relativity and Clio. Enhanced confidentiality controls target law firms handling sensitive client matters.
Watch: How Thomson Reuters and LexisNexis respond as OpenAI begins commoditizing primary legal research infrastructure.
Today, we’re introducing Astra for Law: a new foundation for law firms and legal technology companies to build AI products and workflows around their expertise. It combines GPT‑6 Astra, our latest and most powerful model, with settings, tools, and context tailored for professional legal work. API customers including Harvey and Legora will be able to build on Astra for Law, bringing this intelligence into their own products and workflows. As our frontier models advance, we’ll bring these legal capabilities to our latest models.
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Today, we’re introducing Astra for Law: a new foundation for law firms and legal technology companies to build AI products and workflows around their expertise. It combines GPT‑6 Astra, our latest and most powerful model, with settings, tools, and context tailored for professional legal work. API customers including Harvey and Legora will be able to build on Astra for Law, bringing this intelligence into their own products and workflows. As our frontier models advance, we’ll bring these legal capabilities to our latest models. We are also expanding our work on privacy and governance to give law firms specific controls for confidential client work. Firms can also customize Astra for Law using our 26 new ecosystem plugins that connect ChatGPT to the specialist tools firms already use, like Relativity and Clio. Frontier intelligence for law Astra for Law combines GPT‑6 Astra with a powerful legal search index and instructions for legal analysis and writing. Together, they amplify Astra’s capabilities across the legal practice, while giving firms and legal technology companies the freedom to build their own applications and workflows. Legal research: from facts to a supported answer Our new legal search index is one of the tools Astra for Law can use. Legal research often begins with finding the exact right authority, locating the relevant passages, and understanding how relevant and binding they are to the situation at hand. The index helps Astra for Law do that work, and complements the licensed content and specialist products firms rely on from providers such as Thomson Reuters. By using the legal search index, Astra for Law can search U.S. case law, statutes, regulations, court rules, and administrative decisions across a corpus of more than 230 million URLs, with sources added daily. Our work with Free Law Project, the nonprofit behind CourtListener, brings its case-law collection covering more than 99.9% of published U.S. precedential case law(opens in a new window) into this research experience. To measure how this configuration improves legal research, we tested Astra for Law’s complete setup on 200 U.S. legal research questions from the private validation set of Vals AI’s Legal Research Bench(opens in a new window). This benchmark measures how well the model can find relevant sources and passages, and how well its research answers meet the evaluation criteria. At the highest reasoning effort for both systems, Astra for Law passed the evaluation’s overall correctness check on 54.0% of questions, compared with 38.7% for GPT‑6 Astra using web search alone – a 40% relative improvement. Astra for Law also produces more comprehensive answers. On case-law-focused questions, Astra for Law found 24% more reference cases than GPT‑6 Astra using web search alone at the highest reasoning effort. On the audited set of target passages, it retrieved up to 54% more relevant passages from the correct court opinions, when comparing the systems at the same reasoning effort. The result is a stronger research foundation for advising on a deal, assessing a dispute, or developing a legal strategy, with reliable authorities the lawyer can examine for herself. Astra for Law and GPT‑6 Astra’s performance on the Vals AI Legal Research Bench validation set, across reasoning effort settings. Improving performance on end-to-end legal workflows Legal research is only the first step. Custom instructions for legal analysis and writing guide Astra for Law in applying that research to the client’s facts, developing arguments or deal terms, and identifying weaknesses and uncertainty. That can mean distinguishing a court’s holding from its other observations, addressing cases that weaken an argument, or explaining how a contract exception shifts risk between the parties. For example, when prompted to identify good law with similar fact patterns, Astra for Law could both pinpoint relevant precedent and match fact patterns better than other frontier models: Prompt Our client signed a five-year agreement to manufacture a retailer’s private-label products after being told the retailer’s comparable suppliers historically averaged about $8 million in annual orders. The contract commits the retailer to $2 million in annual purchases and leaves additional orders to its discretion. Before signing, our client knew the retailer was revising how it allocated orders among suppliers. Orders have barely exceeded the minimum. Internal records suggest the historical average was much lower. The retailer says our client accepted both the minimum and the new process. Find the closest factual precedent and write a memo on our client’s misrepresentation claim. Given the same prompt, Astra for Law returned two closely matching precedents; in the litigation example, Claude Fable 5.1 returned a holding that had been reversed on appeal, while in the transactional example it reported finding no such case. Astra for Law will be initially offered to selected law firms through Trusted Access in ChatGPT and Codex, and will be coming soon to the API. It will appear in the model picker as “GPT‑6 Astra Law” and in the API as gpt-6-astra-law. 1 of 3 Legal-grade trust and controls Law firms need to protect client confidences and control how AI is used in their practice. We’ve created a special Trusted Access Program for eligible law firms to give lawyers and people working under their supervision access to Astra for Law for professional legal work. For eligible firms, the offering includes Zero Data Retention (ZDR) on our API, and usage of ChatGPT Enterprise is excluded from human review by default. We are also working with Latham & Watkins, a leader in AI governance, to design for information permissions, ethical walls, client instructions, and firm oversight. Build ChatGPT around your firm’s expertise With frontier intelligence and the right controls, firms can turn their own precedents, methods, and judgment into AI tools and workflows built to their standards. Working with selected firms, our forward-deployed engineers have been adapting ChatGPT Enterprise with custom interfaces and integrations to proprietary data, creating tools for each firm’s workflows: Sullivan & Cromwell built an agreement analyzer that brings the firm’s negotiating playbooks and selected precedents into the review of a new deal. It helps lawyers spot risks that emerge when provisions are read together, then turns those findings into proposed redlines and draft client advice they can challenge and refine. Ropes & Gray built a deal diligence system around how its lawyers work through a data room and decide what matters to the deal. It helps them trace findings back to the source and pinpoint questions that could affect an acquisition, such as whether key customer contracts require notice or consent. Cooley built GO Public to bring its capital markets expertise into how companies prepare to go public, from drafting the IPO filing to identifying the risks that deserve management’s attention. When the deal changes, it carries that change across the filing so lawyers can review the implications together. 1 of 3 Firms can build with their own teams and partner products, with permitted sources and review processes defined for the work. Frontier intelligence, connected to the most trusted tools in legal We’re proud to work with the specialist companies who are advancing legal AI. Today, we’re launching 26 partner-built plugins that help firms go deeper with the tools and knowledge they already use. These plugins cover the practice and business of law. With iManage, a lawyer can draft a negotiation brief in ChatGPT and save it to the matter file; Intapp can surface activities that may need a time entry for review; DeepJudge can bring prior deals into a comparison. Thomson Reuters is bringing HighQ matter context into ChatGPT and previewing a forthcoming CoCounsel Legal connector. The launch includes 9 community plugins from lawyers and legal eng
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