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Theodoros Giannakopoulos

4 accepted papers

2026

Neural Collapse by Design: Learning Class Prototypes on the Hypersphere

ICML 2026poster

Supervised classifier learning has a theoretical optimum — Neural Collapse (NC) — yet standard training does not reach it in practice. We trace this failure to a geometric limitation: cross-entropy is invariant to joint rescaling of features and weights, leaving radial degrees of freedom unconstrain…

Cited by 0SourceScholar
2024

Bridging Mini-Batch and Asymptotic Analysis in Contrastive Learning: From InfoNCE to Kernel-Based Losses

ICML 2024poster

What do different contrastive learning (CL) losses actually optimize for? Although multiple CL methods have demonstrated remarkable representation learning capabilities, the differences in their inner workings remain largely opaque. In this work, we analyse several CL families and prove that, under…

2023

Designing and Evaluating Speech Emotion Recognition Systems: A Reality Check Case Study with IEMOCAP

ICASSP 2023accepted

There is an imminent need for guidelines and standard test sets to allow direct and fair comparisons of speech emotion recognition (SER). While resources, such as the Interactive Emotional Dyadic Motion Capture (IEMOCAP) database, have emerged as widely-adopted reference corpora for researchers to d…

Cited by 0SourceScholar
2023

MMATR: A Lightweight Approach for Multimodal Sentiment Analysis Based on Tensor Methods

ICASSP 2023accepted

Despite the considerable research output on Multimodal Learning for Affect-related tasks, most of the current methods are very complex in terms of the number of trainable parameters, and thus do not constitute effective solutions for real-life applications. In this work we try to alleviate this gap…

Cited by 0SourceScholar