
For robotaxis and other autonomous vehicles (AVs), the hardest problems aren't the everyday scenarios. They're the rare, complex situations that are difficult to anticipate and train for.
Handling these long tail events takes more than just object detection and motion prediction. AVs must understand the situation, reason about cause and effect, choose the right action and turn that decision into a safe, comfortable path - all in real time and in a way developers can inspect, validate and trust.
NVIDIA Alpamayo 2 Super, available now for commercial use, is part of the Alpamayo family, the most-adopted open reasoning models for autonomous driving on Hugging Face, supporting a wide range of AV-relevant capabilities within a single foundation model.
Built on NVIDIA Cosmos 3 Super Reasoner and post trained with reinforcement learning, the model advances the AV ecosystem on two fronts: open commercial licensing and leading multitask capabilities for autonomous driving.
Alpamayo 2 Super is part of NVIDIA's growing collection of open models, datasets and tools for autonomous driving, expanding access, strengthening competition, giving developers greater control and supporting safer, more transparent AV deployment.
Open Licensing for Production AVs Alpamayo 2 Super is available on Hugging Face under OpenMDW 1.1, the Linux Foundation's permissive license for open AI model distributions. The license covers fine tuning, derivative models and commercial redistribution, allowing AV developers, automakers, truckmakers and suppliers to adapt Alpamayo to their own data, driving policies and deployment strategies.
This openness lets AV researchers and companies keep control of their own data and infrastructure, as well as own the value they create through specialized models and accumulated know how. Such control is essential for workflows involving proprietary fleets and safety.
Earlier Alpamayo releases were initially introduced for R&D. The OpenMDW license is now being applied across the entire Alpamayo model family so developers can deploy any of the models commercially without requiring additional permissions. This creates a direct path from adaptation to deployment.
Open weights make that path economically viable. Teams can build on advanced reasoning without re training every foundation capability from scratch or paying frontier model costs for every task, matching the right model to the right job at the right cost.
Alpamayo 2 Super enables frontier-scale reasoning in cloud-based development workflows, where developers can generate high-quality reasoning traces, synthetic training data and teacher outputs for model distillation. Within the Alpamayo model family, Alpamayo 2 Super delivers the highest reasoning and driving performance for multimodal autonomous driving development, while Alpamayo 1.5 and Alpamayo 1 provide more cost-efficient options for cloud-based development and model distillation.
The resulting distilled models can then be optimized for efficient, real-time inference in production vehicles. Together, the Alpamayo model family provides a cloud-to-car workflow that combines frontier-scale reasoning with scalable deployment across commercial AV fleets.
For AV programs, that means frontier scale reasoning in the cloud and efficient, specialized models in the vehicle - a more sustainable way to scale safe autonomy into commercial fleets.
Benchmark-Leading Reasoning at Frontier Scale Alpamayo 2 Super ranks first on LingoQA, an autonomous driving reasoning benchmark, among nearly 40 models evaluated. In NVIDIA testing using the Lingo Judge metric, it outperformed Qwen2.5 VL 72B by 17.0 points, Gemini 2.5 Pro by 15.1 points and GPT 4o by 23.2 points, demonstrating state of the art reasoning for driving centric scenarios. Alpamayo 2 Super also ranks first across all autonomous driving benchmarks evaluated by NVIDIA, underscoring its leading performance across a broad range of AV capabilities.
Alpamayo 2 Super offers 3x the scale of the 10 billion parameter NVIDIA Alpamayo 1.5 and Alpamayo 1 models. The added capacity helps the model better generalize reasoning from sparse examples - a critical capability for the rare, multi agent interactions where conventional systems often struggle.
The model reasons over full surround camera coverage, fusing views from the vehicle's front, sides and rear. This 360 degree context enables richer understanding of lane changes, merges, unprotected turns and complex intersections, where risks commonly arise.
A Multitask Foundation Model for Robotaxis and Autonomous Driving For each driving situation, Alpamayo 2 Super can produce five tightly coupled outputs:
A trajectory describing the vehicle's planned path.
A chain of causation (CoC) trace that explains the reasoning behind the decision.
A meta action (e.g., yield, lane changes, stops) that captures the model's intent.
Reasoning auto-labels that generate CoC annotations for training and validation data.
Visual question answering responses with 2D visual grounding that link the model's answers to specific regions in camera images.
Together, these outputs offer insight into the model's decision-making process. Developers can tie what the model observed to the action it selected, making decisions easier to understand, critique and validate.
CoC traces integrate with NVIDIA Halos safety validation workflows and support AI safety aligned with ISO/PAS 8800 requirements, providing a stronger foundation for AV safety engineering.
Alpamayo 2 Super can also be deployed as an autolabeler to generate CoC labels and perform visual question answering with 2D grounding on proprietary fleet data. By linking its reasoning to specific regions in camera images, the model can transform raw driving clips into richer training data, compressing annotation cycles
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