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20112025
most citedMeasure-Observe-Remeasure: An Interactive Paradigm for Differentially-Private Exploratory Analysis

54 citations · 154 across the 15 of their papers we have counts for

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cs.DB2021

HDMM: Optimizing error of high-dimensional statistical queries under differential privacy

Ryan McKenna, Gerome Miklau, Michael Hay +1

In this work we describe the High-Dimensional Matrix Mechanism (HDMM), a differentially private algorithm for answering a workload of predicate counting queries. HDMM represents qu…

cs.DB2020

A workload-adaptive mechanism for linear queries under local differential privacy

Ryan McKenna, Raj Kumar Maity, Arya Mazumdar +1

We propose a new mechanism to accurately answer a user-provided set of linear counting queries under local differential privacy (LDP). Given a set of linear counting queries (the w…

cs.DB2019

Fair Decision Making using Privacy-Protected Data

Satya Kuppam, Ryan Mckenna, David Pujol +3

Data collected about individuals is regularly used to make decisions that impact those same individuals. We consider settings where sensitive personal data is used to decide who wi…

cs.DB2018

Optimizing error of high-dimensional statistical queries under differential privacy

Ryan McKenna, Gerome Miklau, Michael Hay +1

Differentially private algorithms for answering sets of predicate counting queries on a sensitive database have many applications. Organizations that collect individual-level data,…

cs.DB2018

Ektelo: A Framework for Defining Differentially-Private Computations

Dan Zhang, Ryan McKenna, Ios Kotsogiannis +4

The adoption of differential privacy is growing but the complexity of designing private, efficient and accurate algorithms is still high. We propose a novel programming framework a…

cs.DB2018

On Obtaining Stable Rankings

Abolfazl Asudeh, H. V. Jagadish, Gerome Miklau +1

Decision making is challenging when there is more than one criterion to consider. In such cases, it is common to assign a goodness score to each item as a weighted sum of its attri…