Publication | Closed Access
A <scp>uror</scp>
219
Citations
30
References
2016
Year
Unknown Venue
Hardware SecurityCollaborative SettingMachine LearningData ScienceEngineeringInformation SecurityAttack ModelMachine Learning ModelAdversarial Machine LearningAi SafetyData PrivacyInformation ForensicsCollaborative Deep LearningComputer ScienceDeep LearningData Security
Deep learning in a collaborative setting is emerging as a corner-stone of many upcoming applications, wherein untrusted users collaborate to generate more accurate models. From the security perspective, this opens collaborative deep learning to poisoning attacks, wherein adversarial users deliberately alter their inputs to mis-train the model. These attacks are known for machine learning systems in general, but their impact on new deep learning systems is not well-established.
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