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A. Rios

6 papers hereh-index 13 citations9 works total

Matching runs newest-first, so older work may not be attached to this profile yet.

author position
  • first author3
  • middle author3

Across the 6 of 6 papers where every author was matched, so the position is known.

fields
  • cs.LG4
  • cs.RO1
  • cs.SE1
same name
  • A. Rios — 21 papers, h 19
  • A. Rios — 4 papers, h 4
  • A. Rios — 3 papers, h 31
  • A. Rios — 2 papers, h 15
  • A. Rios — 2 papers, h 1
  • A. Rios — 1 paper, h 3

Either other researchers who publish under this name, or the same person where the external sources have not merged their records.

identity via Semantic Scholar / OpenAlex

collaborators
Showing cs.LGShow all

4 papers · 1 filter

cs.LG2026

Uncertainty Quantification for Computer-Use Agents: A Benchmark across Vision-Language Models and GUI Grounding Datasets

Divake Kumar, Sina Tayebati, Devashri Naik +5

Computer-use agents turn vision-language model (VLM) predictions into executable GUI clicks, so reliable uncertainty estimates are essential for rejection, calibration, miss-severi…

cs.LG2024

Uncertainty Quantification in Continual Open-World Learning

Amanda S. Rios, Ibrahima J. Ndiour, Parual Datta +3

AI deployed in the real-world should be capable of autonomously adapting to novelties encountered after deployment. Yet, in the field of continual learning, the reliance on novelty…

cs.LG2024

CONCLAD: COntinuous Novel CLAss Detector

Amanda Rios, Ibrahima Ndiour, Parual Datta +2

In the field of continual learning, relying on so-called oracles for novelty detection is commonplace albeit unrealistic. This paper introduces CONCLAD ("COntinuous Novel CLAss Det…

cs.LG2024

CUAL: Continual Uncertainty-aware Active Learner

Amanda Rios, Ibrahima Ndiour, Parual Datta +3

AI deployed in many real-world use cases should be capable of adapting to novelties encountered after deployment. Here, we consider a challenging, under-explored and realistic cont…

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