Geoffrey J. Gordon
28 papers · 2006–2025 · 6 conferences · across top CS/AI conferences
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(6)
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Taxonomy Completionist
(13)
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Keyword Pioneer
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Keyword Trendsetter Combo
(5)
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Keyword Champion
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Dynamic Duo
(12)
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Conference Pioneer
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Unstoppable
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Century Club
(28)
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Keyword Collector
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Trend Setter
Conferences
NIPS (15)
ICML (5)
ICLR (3)
JMLR (3)
RSS (1)
UAI (1)
Top co-authors
Research topics
Keywords
domain adaptation
(3)
information theory
(2)
policy learning
(2)
predictive state representation
(2)
neural network
(2)
imitation learning
(2)
dynamical system
(2)
system identification
(2)
representation learning
(2)
sum-product network
(2)
convex optimization
(2)
reinforcement learning
(2)
domain generalization
(2)
privacy-preserving learning
(2)
adversarial learning
(2)
structured prediction
(1)
bayesian inference
(1)
feature learning
(1)
game theory
(1)
multi-task learning
(1)
Papers
CurvGAD: Leveraging Curvature for Enhanced Graph Anomaly Detection
ICML 2025
LICORICE: Label-Efficient Concept-Based Interpretable Reinforcement Learning
ICLR 2025
When is Transfer Learning Possible?
ICML 2024
Inherent Tradeoffs in Learning Fair Representations
JMLR 2022
Fundamental Limits and Tradeoffs in Invariant Representation Learning
JMLR 2022
Understanding and Mitigating Accuracy Disparity in Regression
ICML 2021
Information Obfuscation of Graph Neural Networks
ICML 2021
Domain Adaptation with Conditional Distribution Matching and Generalized Label Shift
NIPS 2020
Conditional Learning of Fair Representations
ICLR 2020
Trade-offs and Guarantees of Adversarial Representation Learning for Information Obfuscation
NIPS 2020
Efficient Multitask Feature and Relationship Learning
UAI 2019
Learning Neural Networks with Adaptive Regularization
NIPS 2019
Towards modular and programmable architecture search
NIPS 2019
An Empirical Study of Example Forgetting during Deep Neural Network Learning
ICLR 2019
Adversarial Multiple Source Domain Adaptation
NIPS 2018
Dual Policy Iteration
NIPS 2018
Learning Beam Search Policies via Imitation Learning
NIPS 2018
Deeply AggreVaTeD: Differentiable Imitation Learning for Sequential Prediction
ICML 2017
Linear Time Computation of Moments in Sum-Product Networks
NIPS 2017
Predictive State Recurrent Neural Networks
NIPS 2017
Functional Gradient Motion Planning in Reproducing Kernel Hilbert Spaces
RSS 2016
A Unified Approach for Learning the Parameters of Sum-Product Networks
NIPS 2016
Supervised Learning for Dynamical System Learning
NIPS 2015
Predictive State Temporal Difference Learning
NIPS 2010
Graphical Models for Structured Classification, with an Application to Interpreting Images of Protein Subcellular Location Patterns
JMLR 2008
A Constraint Generation Approach to Learning Stable Linear Dynamical Systems
NIPS 2007
No-regret Algorithms for Online Convex Programs
NIPS 2006
Multi-Robot Negotiation: Approximating the Set of Subgame Perfect Equilibria in General-Sum Stochastic Games
NIPS 2006