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Robolist.ai

Cortex 2.0

Built by Sereact · DE

Cortex 2.0

Overview

Cortex 2.0 extends our original Cortex architecture by introducing a world model into the learning loop. It uses a world model to predict a set of future scene rollouts in video latent space, helping the robot to evaluate potential futures and choose the most promising actions, thus avoiding costly failures and improving efficiency in robotic manipulation tasks.

Detailed specifications

Compute1
Ros Compatible
false
Other10
Price Tier
150K+
Applications
pick_and_place,returns_handling,kitting
Api Available
false
Force Limiting
true
Deployment Notes
Cortex 2.0 has been deployed in various settings, including return handling, kitting, parcel closing, and item handling. Notable customer implementations include Active Ants, Deltilog, Arvato, and Radial.
Industries Served
warehouse,logistics
Availability Status
available
Compatible Grippers
Robotiq 2F-140
Programming Interface
drag_and_drop
Additional Information
- Cortex 1.6 improves success rate by 6–9% over Cortex 1.5 and by 15–25% over previous models. - Recovery success rates improved from ~45% (baseline) to ~80% (Cortex 1.6). - Dense rewards allow for faster learning, with up to 3× quicker convergence time compared to the baseline. - Designed to continuously improve while performing tasks in real-world settings, utilizing feedback from operational data.

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