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- [1] Dimension reduction for data streams based on Johnson-Lindenstrauss transform Jilin Daxue Xuebao (Gongxueban)/Journal of Jilin University (Engineering and Technology Edition), 2013, 43 (06): : 1626 - 1630
- [2] A Sparse Johnson-Lindenstrauss Transform STOC 2010: PROCEEDINGS OF THE 2010 ACM SYMPOSIUM ON THEORY OF COMPUTING, 2010, : 341 - 350
- [3] Private Query Release via the Johnson-Lindenstrauss Transform PROCEEDINGS OF THE 2023 ANNUAL ACM-SIAM SYMPOSIUM ON DISCRETE ALGORITHMS, SODA, 2023, : 4982 - 5002
- [4] Differential Private POI Queries via Johnson-Lindenstrauss Transform IEEE ACCESS, 2018, 6 : 29685 - 29699
- [5] Privacy Preserving Collaborative Filtering via the Johnson-Lindenstrauss Transform 2017 16TH IEEE INTERNATIONAL CONFERENCE ON TRUST, SECURITY AND PRIVACY IN COMPUTING AND COMMUNICATIONS / 11TH IEEE INTERNATIONAL CONFERENCE ON BIG DATA SCIENCE AND ENGINEERING / 14TH IEEE INTERNATIONAL CONFERENCE ON EMBEDDED SOFTWARE AND SYSTEMS, 2017, : 417 - 424
- [8] Performance of Johnson-Lindenstrauss Transform for k-Means and k-Medians Clustering PROCEEDINGS OF THE 51ST ANNUAL ACM SIGACT SYMPOSIUM ON THEORY OF COMPUTING (STOC '19), 2019, : 1027 - 1038
- [9] Dimensionality reduction: beyond the Johnson-Lindenstrauss bound PROCEEDINGS OF THE TWENTY-SECOND ANNUAL ACM-SIAM SYMPOSIUM ON DISCRETE ALGORITHMS, 2011, : 868 - 887
- [10] The Johnson-Lindenstrauss Transform Itself Preserves Differential Privacy 2012 IEEE 53RD ANNUAL SYMPOSIUM ON FOUNDATIONS OF COMPUTER SCIENCE (FOCS), 2012, : 410 - 419