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Yonatan Slutzky

3 accepted papers

2025

Do Neural Networks Need Gradient Descent to Generalize? A Theoretical Study

NeurIPS 2025poster

Conventional wisdom attributes the mysterious generalization abilities of overparameterized neural networks to gradient descent (and its variants). The recent volume hypothesis challenges this view: it posits that these generalization abilities persist even when gradient descent is replaced by Guess…

Cited by 0SourceScholar
2025

Mamba Knockout for Unraveling Factual Information Flow

ACL 2025long

This paper investigates the flow of factual information in Mamba State-Space Model (SSM)-based language models. We rely on theoretical and empirical connections to Transformer-based architectures and their attention mechanisms. Exploiting this relationship, we adapt attentional interpretability tech…

2025

The Implicit Bias of Structured State Space Models Can Be Poisoned With Clean Labels

NeurIPS 2025spotlight

Neural networks are powered by an implicit bias: a tendency of gradient descent to fit training data in a way that generalizes to unseen data. A recent class of neural network models gaining increasing popularity is structured state space models (SSMs). Prior work argued that the implicit bias of SS…

Cited by 0SourcecodeScholar