TC: Small: Provably Private Microdata Publishing
TC:小型:可证明的私人微数据出版
基本信息
- 批准号:1116991
- 负责人:
- 金额:$ 43.92万
- 依托单位:
- 依托单位国家:美国
- 项目类别:Standard Grant
- 财政年份:2011
- 资助国家:美国
- 起止时间:2011-09-01 至 2016-08-31
- 项目状态:已结题
- 来源:
- 关键词:
项目摘要
Data is a key resource in this information age. The availability of data, however, often causes privacy concerns. Many data sharing scenarios require data be anonymized for privacy protection. Most existing data anonymization techniques, however, satisfy only weak privacy notions that rely on particular assumptions about the adversaries, and provide inadequate protection. In recent years, the elegant notion of differential privacy has gradually been accepted as the privacy notion of choice for answering statistical queries. Most research on differential privacy, however, focuses on answering interactive queries, and there are several negative results on publishing microdata while satisfying differential privacy. Regardless, many data sharing scenarios require sharing of microdata, and research is needed to bridge this gap.This project aims at bridging the gap between the elegant notion of differential privacy, and the practical difficulty of publishing microdata while preserving utility. Building on the preliminary results of the PI on using random sampling together with "safe" k-anonymization to satisfy differential privacy, this project aims at advancing the state of the art of both scientific understanding and specific techniques for privacy-preserving microdata publishing. Research activities include developing (1) Practical anonymization methods that can be proven to satisfy differential privacy, while capable of handling high-dimensional data; (2) Relaxations of differential privacy that are more suitable for microdata publishing; (3) Privacy theory and techniques that are easily applied to a family of data sanitization algorithms called localized algorithms, enabling the usage of input perturbation techniques for provably-private microdata publishing; (4) Privacy notions and techniques for publishing social network data and network trace data.Advances in data anonymization techniques will benefit the society by providing a better balance between the need to release data to serve public interest and the need to protect individuals' privacy. This project also involves developing a graduate seminar course on data privacy, and supports two graduate students.
数据是信息时代的关键资源。然而,数据的可用性往往会引起隐私问题。许多数据共享场景需要对数据进行匿名化,以保护隐私。然而,大多数现有的数据匿名化技术只能满足薄弱的隐私概念,这些概念依赖于对对手的特定假设,并且提供的保护不足。近年来,差分隐私的优雅概念逐渐被接受为回答统计查询的隐私概念选择。然而,大多数关于差异隐私的研究都集中在回答交互式查询上,并且在满足差异隐私的同时发布微数据有一些负面结果。无论如何,许多数据共享场景需要共享微数据,需要进行研究来弥合这一差距。该项目旨在弥合差异隐私的优雅概念与在保持效用的同时发布微数据的实际困难之间的差距。在PI使用随机抽样和“安全”k-匿名化来满足差异隐私的初步结果的基础上,该项目旨在推进保护隐私的微数据发布的科学理解和具体技术的最新水平。研究活动包括开发(1)实用的匿名化方法,可以证明满足差异隐私,同时能够处理高维数据;(2)放宽差异化隐私,更适合微数据发布;(3)隐私理论和技术很容易应用于一系列数据处理算法,称为本地化算法,允许使用输入扰动技术进行可证明的私有微数据发布;(4)社交网络数据和网络轨迹数据发布的隐私理念与技术。数据匿名化技术的进步将使社会受益,因为它可以更好地平衡为公共利益而发布数据的需要和保护个人隐私的需要。该项目还包括开发一门关于数据隐私的研究生研讨会课程,并为两名研究生提供支持。
项目成果
期刊论文数量(0)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
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Ninghui Li其他文献
PURE: A Framework for Analyzing Proximity-based Contact Tracing Protocols
PURE:用于分析基于接近度的接触追踪协议的框架
- DOI:
- 发表时间:
2020 - 期刊:
- 影响因子:16.6
- 作者:
F. Cicala;Weicheng Wang;Tianhao Wang;Ninghui Li;E. Bertino;F. Liang;Yang Yang - 通讯作者:
Yang Yang
Fisher Information as a Utility Metric for Frequency Estimation under Local Differential Privacy
Fisher信息作为本地差分隐私下频率估计的效用度量
- DOI:
- 发表时间:
2022 - 期刊:
- 影响因子:0
- 作者:
Milan Lopuhaä;B. Škorić;Ninghui Li - 通讯作者:
Ninghui Li
A formal semantics for P3P
P3P 的形式化语义
- DOI:
- 发表时间:
2004 - 期刊:
- 影响因子:0
- 作者:
Ting Yu;Ninghui Li;A. Antón - 通讯作者:
A. Antón
Anonymizing Network Traces with Temporal Pseudonym Consistency
通过时间假名一致性对网络跟踪进行匿名化
- DOI:
- 发表时间:
2012 - 期刊:
- 影响因子:0
- 作者:
Wahbeh H. Qardaji;Ninghui Li - 通讯作者:
Ninghui Li
Sensornet
传感器网
- DOI:
- 发表时间:
2009 - 期刊:
- 影响因子:0
- 作者:
Rodney Topor;Kenneth Salem;Amarnath Gupta;K. Goda;John F. Gehrke;N. Palmer;Mohamed Sharaf;Alexandros Labrinidis;J. Roddick;Ariel Fuxman;Renée J. Miller;Wang;Anastasios Kementsietsidis;Philippe Bonnet;D. Shasha;Ronald Peikert;Bertram Ludäscher;S. Bowers;T. McPhillips;Harald Naumann;K. Voruganti;J. Domingo;Ben Carterette;Panagiotis G. Ipeirotis;Marcelo Arenas;Y. Manolopoulos;Y. Theodoridis;V. Tsotras;B. Carminati;Jan Jurjens;Eduardo B. Fernandez;Murat Kantarcıoǧlu;Jaideep Vaidya;Indrakshi Ray;Athena Vakali;Cristina Sirangelo;E. Pitoura;Himanshu Gupta;Surajit Chaudhuri;G. Weikum;Ulf Leser;David W. Embley;Fausto Giunchiglia;P. Shvaiko;Mikalai Yatskevich;Edward Y. Chang;Christine Parent;S. Spaccapietra;E. Zimányi;G. Anadiotis;S. Kotoulas;Ronny Siebes;Grigoris Antoniou;D. Plexousakis;J. Bailey;François Bry;Tim Furche;Sebastian Schaffert;David Martin;Gregory D. Speegle;Krithi Ramamritham;P. Chrysanthis;Kai;Stéphane Bressan;S. Abiteboul;D. Suciu;G. Dobbie;Tok Wang Ling;Sugato Basu;Ramesh Govindan;Michael H. Böhlen;C. S. Jensen;Jianyong Wang;K. Vidyasankar;A. Chan;Serge Mankovski;S. Elnikety;P. Valduriez;Yannis Velegrakis;Mario A. Nascimento;Michael Huggett;Andrew U. Frank;Yanchun Zhang;Guandong Xu;R. Snodgrass;Alan Fekete;Marcus Herzog;Konstantinos Morfonios;Y. Ioannidis;E. Wohlstadter;M. Matera;F. Schwagereit;Steffen Staab;Keir Fraser;Jingren Zhou;M. Mokbel;Walid G. Aref;Mirella M. Moro;Markus Schneider;Panos Kalnis;Gabriel Ghinita;Michael F. Goodchild;Shashi Shekhar;James Kang;Vijayaprasath Gandhi;Nikos Mamoulis;Betsy George;Michel Scholl;Agnès Voisard;Ralf Hartmut Güting;Yufei Tao;Dimitris Papadias;Peter Revesz;G. Kollios;E. Frentzos;Apostolos N. Papadopoulos;Bernhard Thalheim;Jovan Pehcevski;Benjamin Piwowarski;S. Theodoridis;Konstantinos Koutroumbas;George Karabatis;Don Chamberlin;Philip A. Bernstein;Michael H. Böhlen;J. Gamper;Ping Li;Kazimierz Subieta;S. Harizopoulos;Ethan Zhang;Yi Zhang;Theodore Johnson;Hans;S. Fienberg;Jiashun Jin;Radu Sion;C. Paice;Nikos Hardavellas;Ippokratis Pandis;Edie M. Rasmussen;Hiroshi Yoshida;G. Graefe;Bernd Reiner;Karl Hahn;K. Wada;T. Risch;Jiawei Han;Bolin Ding;Lukasz Golab;Michael Stonebraker;Bibudh Lahiri;Srikanta Tirthapura;Erik Vee;Yanif Ahmad;U. Çetintemel;Mitch Cherniack;S. Zdonik;Mariano P. Consens;M. Lalmas;R. Baeza;D. Hiemstra;Peer Krögerand;Arthur Zimek;Nick Craswell;Carson Kai;Maxime Crochemore;Thierry Lecroq;Arie Shoshani;Jimmy Lin;Hwanjo Yu;David B. Lomet;H. Hinterberger;Ninghui Li;Phillip B. Gibbons;Mouna Kacimi;Thomas Neumann - 通讯作者:
Thomas Neumann
Ninghui Li的其他文献
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{{ truncateString('Ninghui Li', 18)}}的其他基金
Collaborative Research: SaTC: CORE: Small: Differentially Private Data Synthesis: Practical Algorithms and Statistical Foundations
协作研究:SaTC:核心:小型:差分隐私数据合成:实用算法和统计基础
- 批准号:
2247794 - 财政年份:2023
- 资助金额:
$ 43.92万 - 项目类别:
Continuing Grant
Collaborative Proposal: SaTC: Frontiers: Center for Distributed Confidential Computing (CDCC)
协作提案:SaTC:前沿:分布式机密计算中心 (CDCC)
- 批准号:
2207204 - 财政年份:2022
- 资助金额:
$ 43.92万 - 项目类别:
Continuing Grant
SaTC: CORE: Medium: Collaborative: User-Centered Deployment of Differential Privacy
SaTC:核心:媒介:协作:以用户为中心的差异隐私部署
- 批准号:
1931443 - 财政年份:2020
- 资助金额:
$ 43.92万 - 项目类别:
Standard Grant
RAPID: Collaborative: PPSRC: Privacy-Preserving Self-Reporting for COVID-19
RAPID:协作:PPSRC:COVID-19 隐私保护自我报告
- 批准号:
2034235 - 财政年份:2020
- 资助金额:
$ 43.92万 - 项目类别:
Standard Grant
SaTC: CORE: Improving Password Ecosystem: A Holistic Approach
SaTC:核心:改进密码生态系统:整体方法
- 批准号:
1704587 - 财政年份:2017
- 资助金额:
$ 43.92万 - 项目类别:
Standard Grant
EAGER: Bridging The Gap between Theory and Practice in Data Privacy
EAGER:弥合数据隐私理论与实践之间的差距
- 批准号:
1640374 - 财政年份:2016
- 资助金额:
$ 43.92万 - 项目类别:
Standard Grant
TWC SBE: Medium: Collaborative: User-Centric Risk Communication and Control on Mobile Devices
TWC SBE:媒介:协作:移动设备上以用户为中心的风险沟通和控制
- 批准号:
1314688 - 财政年份:2013
- 资助金额:
$ 43.92万 - 项目类别:
Standard Grant
CCS Workshops Organization Supplement
CCS 研讨会组织补充
- 批准号:
1054001 - 财政年份:2010
- 资助金额:
$ 43.92万 - 项目类别:
Standard Grant
TC:Medium: Collaborative Research: Towards Formal, Risk Aware Authorization
TC:中:协作研究:迈向正式的、具有风险意识的授权
- 批准号:
0963715 - 财政年份:2010
- 资助金额:
$ 43.92万 - 项目类别:
Continuing Grant
TC:Medium:Collaborative Research:Techniques to Retrofit Legacy Code
TC:中:协作研究:改造遗留代码的技术
- 批准号:
0905442 - 财政年份:2009
- 资助金额:
$ 43.92万 - 项目类别:
Standard Grant
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