TransNet: Training Privacy-Preserving Neural Network over Transformed Layer
Summary: TransNet proposes a privacy-preserving collaborative neural network using a transformed layer to support arbitrarily partitioned data, with a server that pools transformed data. It reduces computation and communication compared with MPC/HE, requires no special security on the training server, and achieves near-baseline accuracy across varying participant counts. (summarized by gpt-5-nano on Feb 09 2026)
Incoming Non-self Citations Over Time
Authors
- 1. Qijian He (University of Science and Technology Beijing)
- 2. Wei Yang (University of Science and Technology Beijing)
- 3. Bingren Chen (University of Science and Technology Beijing)
- 4. Yangyang Geng (University of Science and Technology Beijing)
- 5. Liusheng Huang (University of Science and Technology Beijing)
BibTeX Citation
@article{he_vldb20,
title = {{TransNet: Training Privacy-Preserving Neural Network over Transformed Layer}},
author = {He, Qijian and Yang, Wei and Chen, Bingren and Geng, Yangyang and Huang, Liusheng},
journal = {PVLDB},
series = {{VLDB} '20},
volume = {13},
number = {11},
pages = {1849--1862},
doi = {10.14778/3407790.3407794},
url = {https://doi.org/10.14778/3407790.3407794},
year = {2020}
}
Incoming Citations (Sorted by Pagerank)
Showing 1 of 1 citing papers.
| Rank | Citing Paper | Year | Venue | Pagerank |
|---|---|---|---|---|
| 10,587 | Privacy-preserving and Verifiable Causal Prescriptive Analytics | 2026 | SIGMOD | 4.9793485e-05 |
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Outgoing Citations (Sorted by Pagerank)
Showing 3 of 3 cited papers.
Citations counted here include only citations to other VLDB/SIGMOD/CIDR/PODS papers in this database.
| Rank | Cited Paper | Year | Venue | Pagerank |
|---|---|---|---|---|
| 68 | Privacy-Preserving Data Mining | 2000 | SIGMOD | 0.00037958605 |
| 2,307 | Secure kNN Computation on Encrypted Databases | 2009 | SIGMOD | 8.6665657e-05 |
| 5,285 | Functional Mechanism: Regression Analysis under Differential Privacy | 2012 | VLDB | 6.1975714e-05 |
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