الباحثون

Danica J. Sutherland

المنشورات 3

نسخة أولية وصول مفتوح

Global Communication or Graph-Specific Memory?

Scalable Graph Transformers are commonly trained and evaluated on static large graphs in a transductive setup. Many scalable Graph Transformer components can be formulated as a constant-size shared memory, similar to virtual nodes, providing compressed information about the whole graph. The counterpart of these models …

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Memorize, Adapt, Ignore: Diagnosing Robot Learning Mechanisms under Training Data Variation

Training data variation, whether through designing a domain randomization (DR) scheme in simulation or curating demonstrations for imitation learning, is a primary lever for improving the robustness of robotic manipulation policies. Yet its underlying mechanisms remain poorly understood, and practitioners typically sel …

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