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Jacopo Teneggi

4 papers hereh-index 29 citations7 works total

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

author position
  • first author3
  • middle author1

Across the 4 of 4 papers where every author was matched, so the position is known.

fields
  • cs.AI1
  • cs.CV1
  • cs.LG1
  • stat.ML1

identity via Semantic Scholar / OpenAlex

collaborators

4 papers

stat.ML2026

Parameter-Free and Group Conditional Online Conformal Prediction

Beepul Bharti, Ambar Pal, Jacopo Teneggi +1

Uncertainty quantification (UQ) is critical for the deployment of machine learning predictors in real-world scenarios where the data distribution may shift over time (i.e., data ma…

cs.AI2026

Protein Design with Agent Rosetta: A Case Study for Specialized Scientific Agents

Jacopo Teneggi, S. M. Bargeen A. Turzo, Tanya Marwah +4

Large language models (LLMs) are capable of emulating reasoning and using tools, creating opportunities for autonomous agents that execute complex scientific tasks. Protein design…

cs.LG2025

Direct Preference Optimization for Adaptive Concept-based Explanations

Jacopo Teneggi, Zhenzhen Wang, Paul H. Yi +2

Concept-based explanation methods aim at making machine learning models more transparent by finding the most important semantic features of an input (e.g., colors, patterns, shapes…

cs.CV2025

Conformal Risk Control for Semantic Uncertainty Quantification in Computed Tomography

Jacopo Teneggi, J Webster Stayman, Jeremias Sulam

Uncertainty quantification is necessary for developers, physicians, and regulatory agencies to build trust in machine learning predictors and improve patient care. Beyond measuring…

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