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The BibTex of the paper: @Article{Arcolezi2022,
doi = {10.1007/s00521-022-07393-0},
url = {https://doi.org/10.1007/s00521-022-07393-0},
year = {2022},
month = jun,
publisher = {Springer Science and Business Media {LLC}},
author = {H{'{e}}ber Hwang Arcolezi and Jean-Fran{\c{c}}ois Couchot and Denis Renaud and Bechara Al Bouna and Xiaokui Xiao},
title = {Differentially private multivariate time series forecasting of aggregated human mobility with deep learning: Input or gradient perturbation?},
journal = {Neural Computing and Applications}
}
The name of the model proposed: No new model (evaluation of state-of-the-art shallow RNNs with differential privacy guarantees)
The DL components adopted in the model: LSTM, GRU, BiLSTM, BiGRU
The evaluation metrics adopted: RMSE and privacy-utility trade-off
@Article{Arcolezi2022,
doi = {10.1007/s00521-022-07393-0},
url = {https://doi.org/10.1007/s00521-022-07393-0},
year = {2022},
month = jun,
publisher = {Springer Science and Business Media {LLC}},
author = {H{'{e}}ber Hwang Arcolezi and Jean-Fran{\c{c}}ois Couchot and Denis Renaud and Bechara Al Bouna and Xiaokui Xiao},
title = {Differentially private multivariate time series forecasting of aggregated human mobility with deep learning: Input or gradient perturbation?},
journal = {Neural Computing and Applications}
}
For a dataset
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