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Federated Machine Learning

Addo, Nancy (2020-02-27)

dc.contributor.authorAddo, Nancy
dc.date.accessioned2020-03-06T22:01:03Z
dc.date.available2020-03-06T22:01:03Z
dc.date.issued2020-02-27
dc.identifier.urihttps://www.utupub.fi/handle/10024/149108
dc.description.abstractIn recent times, machine gaining knowledge has transformed areas such as processer visualisation, morphological and speech identification and processing. The implementation of machine learning is frim built on data and gathering the data in confidentiality disturbing circumstances. The studying of amalgamated systems and methods is an innovative area of modern technological field that facilitates the training within models without gathering the information. As an alternative to transferring the information, clients co-operate together to train a model be only delivering weights updates to the server. While this concerning privacy is better and more adaptable in some circumstances very expensive. This thesis generally introduces some of the fundamental theories, structural design and procedures of federated machine learning and its prospective in numerous applications. Some optimisation methods and some privacy ensuring systems like differential privacy also reviewed.
dc.format.extent43
dc.language.isoeng
dc.rightsfi=Julkaisu on tekijänoikeussäännösten alainen. Teosta voi lukea ja tulostaa henkilökohtaista käyttöä varten. Käyttö kaupallisiin tarkoituksiin on kielletty.|en=This publication is copyrighted. You may download, display and print it for Your own personal use. Commercial use is prohibited.|
dc.titleFederated Machine Learning
dc.type.ontasotfi=Pro gradu -tutkielma|en=Master's thesis|
dc.rights.accessrightsavoin
dc.identifier.urnURN:NBN:fi-fe202003067497
dc.contributor.facultyfi=Luonnontieteiden ja tekniikan tiedekunta|en=Faculty of Science and Engineering|
dc.contributor.studysubjectfi=Matematiikka|en=Mathematics|
dc.contributor.departmentfi=Matematiikan ja tilastotieteen laitos|en=Department of Mathematics and Statistics|


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