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🚨 AI News | TestingCatalog· @testingcatalog · X·· 1 小时前AI 评分52
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Creatify 发布面向广告制作的视频模型 Boreal-H3 和由 Claude Opus 5.5 驱动的 Ad Agent。

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Creatify has launched Boreal-H3, a video model for ad production, and an Ad Agent powered by Claude Opus 5.5.

Boreal-H3 is post-trained on MiniMax H3 with real ad projects. Creatify measured brief success rates rising from 28% to 50%, identity match from 83% to 94%, and a 71% drop in failure severity on the same tasks.

Products keep their shape, labels, and details as the camera moves around.

Generated creators can handle UGC, complex spoken lines, and two-person dialogue.

Camera movements and keyframes can be directed by users, including for product handling and physics.

The sample ad below was produced by Ad Agent in a single run.

引用Creatify Labs@Creatify_Labs
Introducing Boreal-H3 — a video model built for ads and our next step toward recursive self-improvement in video generation. A good-looking video isn’t enough. The product has to stay the same. The actor has to stay the same. The label has to be right. And the action in the brief actually has to happen. So we post-trained MiniMax H3 specifically for advertising. But this isn’t a one-off SFT or LoRA fine-tune. We built a closed-loop system that learns what to improve next. Human-calibrated evaluation diagnoses failures and guides the next intervention: targeted data collection, reinforcement learning, or inference optimization. When the feedback is unreliable, we revise the evaluator or reward—not just the generator. Every experiment feeds into shared memory, informing the next training decision. The model improves, and so does the process that produces its successor. The results: → 85.3% reference fidelity — highest among the frontier video generation models we evaluated → Brief success: 28% → 50% → Identity match: 83% → 94% → Visible defects per clip: down 70% → Generation time and estimated cost: down 20% Boreal-H3 doesn’t just make better-looking video. It makes more usable ads. Credit to the @MiniMax_AI team for the foundation we’re building on. This launch is a checkpoint, not the finish line. We’re building more than a better video model. We’re building a system that learns how to make the next one better.
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