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Alkis Gotovos

8 accepted papers

2025

Inference-Time Personalized Alignment with a Few User Preference Queries

NeurIPS 2025poster

We study the problem of aligning a generative model's response with a user's preferences. Recent works have proposed several different formulations for personalized alignment; however, they either require a large amount of user preference queries or require that the preference be explicitly specifie…

Cited by 0SourceScholar
2024

Hints-In-Browser: Benchmarking Language Models for Programming Feedback Generation

NeurIPS 2024poster

Generative AI and large language models hold great promise in enhancing programming education by generating individualized feedback and hints for learners. Recent works have primarily focused on improving the quality of generated feedback to achieve human tutors' quality. While quality is an importa…

Cited by 4SourcePDFScholar
2022

On the Existence of Universal Lottery Tickets

ICLR 2022poster

The lottery ticket hypothesis conjectures the existence of sparse subnetworks of large randomly initialized deep neural networks that can be successfully trained in isolation. Recent work has experimentally observed that some of these tickets can be practically reused across a variety of tasks, hint…

2021

Scaling up Continuous-Time Markov Chains Helps Resolve Underspecification

NeurIPS 2021poster

Modeling the time evolution of discrete sets of items (e.g., genetic mutations) is a fundamental problem in many biomedical applications. We approach this problem through the lens of continuous-time Markov chains, and show that the resulting learning task is generally underspecified in the usual set…

Cited by 12SourcePDFScholar
2019

Fast Gaussian process based gradient matching for parameter identification in systems of nonlinear ODEs

AISTATS 2019poster

Parameter identification and comparison of dynamical systems is a challenging task in many fields. Bayesian approaches based on Gaussian process regression over time-series data have been successfully applied to infer the parameters of a dynamical system without explicitly solving it. While the bene…

2015

Efficient visual exploration and coverage with a micro aerial vehicle in unknown environments

ICRA 2015poster

In this paper, we propose a novel and computationally efficient algorithm for simultaneous exploration and coverage with a vision-guided micro aerial vehicle (MAV) in unknown environments. This algorithm continually plans a path that allows the MAV to fulfil two objectives at the same time while avo…

Cited by 155SourceScholar
2015

Safe Exploration for Optimization with Gaussian Processes

ICML 2015poster

We consider sequential decision problems under uncertainty, where we seek to optimize an unknown function from noisy samples. This requires balancing exploration (learning about the objective) and exploitation (localizing the maximum), a problem well-studied in the multi-armed bandit literature. In…

Cited by 498SourcePDFScholar