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Tony Ginart

3 accepted papers

2026

MFCL Audio: An Audio Function Calling Evaluation for Large Language Models

ICML 2026poster

Audio agents are increasingly deployed to execute tools from spoken requests, yet audio tool use poses challenges beyond text-only function calling: perception errors (e.g., homophones, noise, disfluencies) can corrupt entities and arguments, and natural interactions often require clarification that…

Cited by 0SourceScholar
2022

MLDemon:Deployment Monitoring for Machine Learning Systems

AISTATS 2022poster

Post-deployment monitoring of ML systems is critical for ensuring reliability, especially as new user inputs can differ from the training distribution. Here we propose a novel approach, MLDemon, for ML DEployment MONitoring. MLDemon integrates both unlabeled data and a small amount of on-demand labe…

2021

Competing AI: How does competition feedback affect machine learning?

AISTATS 2021poster

This papers studies how competition affects machine learning (ML) predictors. As ML becomes more ubiquitous, it is often deployed by companies to compete over customers. For example, digital platforms like Yelp use ML to predict user preference and make recommendations. A service that is more often…

Cited by 21SourcePDFScholar