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Mauricio Tec

9 accepted papers

2026

Preference Robustness for DPO with Applications to Public Health

AAAI 2026technical

We study an LLM fine-tuning task for designing reward functions for sequential resource allocation problems in public health, guided by human preferences expressed in natural language. This setting presents a challenging testbed for alignment due to complex and ambiguous objectives and limited data

Cited by 0SourcePDFScholar
2026

Rule-Bottleneck RL: Learning to Decide and Explain for Sequential Resource Allocation via LLM Agents in Public Health

IJCAI 2026

Reducing preventable maternal mortality remains a global health priority. Under Sustainable Development Goal (SDG) target 3.1, the WHO emphasizes timely and equitable allocation of limited maternal health resources. Motivated by Department of Obstetrics and Gynecology at several important hospitals

Cited by 0Scholar
2025

E(n) Equivariant Topological Neural Networks

ICLR 2025poster

Graph neural networks excel at modeling pairwise interactions, but they cannot flexibly accommodate higher-order interactions and features. Topological deep learning (TDL) has emerged recently as a promising tool for addressing this issue. TDL enables the principled modeling of arbitrary multi-way,…

2025

Optimizing Heat Alert Issuance with Reinforcement Learning

AAAI 2025technical

A key strategy in societal adaptation to climate change is using alert systems to prompt preventative action and reduce the adverse health impacts of extreme heat events. This paper implements and evaluates reinforcement learning (RL) as a tool to optimize the effectiveness of such systems. Our cont…

2024

SpaCE: The Spatial Confounding Environment

ICLR 2024poster

Spatial confounding poses a significant challenge in scientific studies involving spatial data, where unobserved spatial variables can influence both treatment and outcome, possibly leading to spurious associations. To address this problem, we introduce SpaCE: The Spatial Confounding Environment, th…

2023

Weather2vec: Representation Learning for Causal Inference with Non-local Confounding in Air Pollution and Climate Studies

AAAI 2023technical

Estimating the causal effects of a spatially-varying intervention on a spatially-varying outcome may be subject to non-local confounding (NLC), a phenomenon that can bias estimates when the treatments and outcomes of a given unit are dictated in part by the covariates of other nearby units. In parti…

2021

Adversarial Intrinsic Motivation for Reinforcement Learning

NeurIPS 2021poster

Learning with an objective to minimize the mismatch with a reference distribution has been shown to be useful for generative modeling and imitation learning. In this paper, we investigate whether one such objective, the Wasserstein-1 distance between a policy's state visitation distribution and a ta…

2021

Watch Where You’re Going! Gaze and Head Orientation as Predictors for Social Robot Navigation

ICRA 2021poster

Mobile robots deployed in human-populated environments must be able to safely and comfortably navigate in close proximity to people. Head orientation and gaze are both mechanisms which help people to interpret where other people intend to walk, which in turn enables them to coordinate their movement…

Cited by 23SourceScholar