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1M_Generalization is a simple anonymization algorithm for 1:M dataset. It contains two sub-algorithms: Mondrian (for relational part) and Partition (transaction part). Both of them are straight forward, and can be repalced by more powerful algorithm with limtied modification.

Ultimo commit 18 nov 2016

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Anatomize and Partition Anonymization

Ultimo commit 19 gen 2015

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Algorithms Princeton exercises

Ultimo commit 8 nov 2016

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This repository is an open source python implement for Anatomy. I implement this algorithm in python for further study.

Ultimo commit 23 mag 2017

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This repository is an python implement of Apriori_based_Anonymization for set-valued dataset anonymization.

Ultimo commit 3 set 2015

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The raw mondrian is designed for numerical attributes. When comes to categorical attributes, Mondrian needs to transform categorical attributes to numerical ones. This transformations is not good for some applications. In 2006, LeFevre proposed basic Mondrian, which support both categorical and numerical attributes. This repository is an implementation for basic Mondrian.

Ultimo commit 27 mag 2019

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Core HW bindings and optimizations for BigDL

Ultimo commit 13 giu 2023

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CS234: Reinforcement Learning Winter 2019

Ultimo commit 8 lug 2019

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Ultimo commit 20 lug 2024

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cluster based generalization for k-anonymity

Ultimo commit 27 mag 2019

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Deep Learning Exercise and Notebook

Ultimo commit 3 set 2020

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Ultimo commit 19 mag 2020

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Enhanced_Mondrian for incomplete microdata

Ultimo commit 27 lug 2016

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An Industrial Grade Federated Learning Framework

Ultimo commit 31 lug 2020

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My solution for Google APAC

Ultimo commit 18 set 2016

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Support Deep Learning on Hadoop platform

Ultimo commit 26 mag 2017

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HILB and iDIST are two efficient anonymization algorithms proposed by Gabriel Ghinita in his paper. This repository is a python implementation for HILB and iDIST.

Ultimo commit 16 ago 2015

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本文档适合于刚入学的硕士和博士(计算机专业最好,其他专业可参考)。

Ultimo commit 8 set 2022

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Supercharge Your LLM with the Fastest KV Cache Layer

Ultimo commit 4 ago 2025

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