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Michael Gastpar
ورقة واحدة في مجموعة PaperMetrix
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Locally Differentially-Private Randomized Response for Discrete Distribution Learning
2018 · arXiv (Cornell University)
We consider a setup in which confidential i.i.d. samples $X_1,\dotsc,X_n$ from an unknown finite-support distribution $\boldsymbol{p}$ are passed through $n$ copies of a discrete privatization channel (a.k.a. mechanism) producing outputs $Y_1,\dotsc,Y_n$. The channel law guarantees …