16 833

Robot Localization and Mapping

Carnegie Mellon University · UGRD · Fall 2026

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Robot localization and mapping are fundamental capabilities for mobile robots operating in the real world. Even more challenging than these individual problems is their combination: simultaneous localization and mapping (SLAM). Robust and scalable solutions are needed that can handle the uncertainty inherent in sensor measurements, while providing localization and map estimates in real-time. We will explore suitable efficient probabilistic inference algorithms at the intersection of linear algebra and probabilistic graphical models. We will also explore state-of-the-art systems. Course Website: http://frc.ri.cmu.edu/~kaess/teaching/16833/Spring2018

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Class #carnegie_mellon-16833Fall 2026UGRD12 credits
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