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Sofiane ENNADIR

5 accepted papers

2025

Enhancing Graph Classification Robustness with Singular Pooling

NeurIPS 2025poster

Graph Neural Networks (GNNs) have achieved strong performance across a range of graph representation learning tasks, yet their adversarial robustness in graph classification remains underexplored compared to node classification. While most existing defenses focus on the message-passing component, th…

Cited by 0SourceScholar
2025

Pool Me Wisely: On the Effect of Pooling in Transformer-Based Models

NeurIPS 2025poster

Transformer models have become the dominant backbone for sequence modeling, leveraging self-attention to produce contextualized token representations. These are typically aggregated into fixed-size vectors via pooling operations for downstream tasks. While much of the literature has focused on atten…

Cited by 0SourceScholar
2024

A Simple and Yet Fairly Effective Defense for Graph Neural Networks

AAAI 2024technical

Graph Neural Networks (GNNs) have emerged as the dominant approach for machine learning on graph-structured data. However, concerns have arisen regarding the vulnerability of GNNs to small adversarial perturbations. Existing defense methods against such perturbations suffer from high time complexity…

2024

Bounding the Expected Robustness of Graph Neural Networks Subject to Node Feature Attacks

ICLR 2024poster

Graph Neural Networks (GNNs) have demonstrated state-of-the-art performance in various graph representation learning tasks. Recently, studies revealed their vulnerability to adversarial attacks. In this work, we theoretically define the concept of expected robustness in the context of attributed gra…

2024

If You Want to Be Robust, Be Wary of Initialization

NeurIPS 2024poster

Graph Neural Networks (GNNs) have demonstrated remarkable performance across a spectrum of graph-related tasks, however concerns persist regarding their vulnerability to adversarial perturbations. While prevailing defense strategies focus primarily on pre-processing techniques and adaptive message-p…

Cited by 1SourcePDFScholar