Publication | Closed Access
VF <sup>2</sup> Boost: Very Fast Vertical Federated Gradient Boosting for Cross-Enterprise Learning
62
Citations
71
References
2021
Year
Unknown Venue
Artificial IntelligencePrivacy ProtectionEngineeringMachine LearningInformation SecurityFederated StructureTraining RoutinesData ScienceData MiningCross-enterprise LearningPrivacy GuaranteesSupervised LearningPrivacy Enhancing TechnologyKnowledge DiscoveryData PrivacyComputer ScienceDistributed LearningDifferential PrivacyPrivacyData SecurityCryptographyPrivacy PreservationFederated LearningParallel LearningBig Data
With the ever-evolving concerns on privacy protection, vertical federated learning (FL), where participants own non-overlapping features for the same set of instances, is becoming a heated topic since it enables multiple enterprises to strengthen the machine learning models collaboratively with privacy guarantees. Nevertheless, to achieve privacy preservation, vertical FL algorithms involve complicated training routines and time-consuming cryptography operations, leading to slow training speed.
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