MARS-VFL: AUnified Benchmark for Vertical Federated Learning with Realistic Evaluation
–Neural Information Processing Systems
Vertical Federated Learning (VFL) has emerged as a critical privacy-preserving learning paradigm, enabling collaborative model training by leveraging distributed features across clients. However, due to privacy concerns, there are few publicly available real-world datasets for evaluating VFL methods, which poses significant challenges to related research. To bridge this gap, we propose MARS-VFL, a unified benchmark for realistic VFL evaluation.
Neural Information Processing Systems
Jun-22-2026, 09:11:14 GMT
- Genre:
- Research Report > Experimental Study (1.00)
- Overview (0.92)
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- Information Technology
- Security & Privacy (1.00)
- Data Science > Data Mining (1.00)
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- Artificial Intelligence > Machine Learning
- Neural Networks > Deep Learning (0.46)
- Performance Analysis > Accuracy (0.46)
- Information Technology