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MLCapsule: Guarded Offline Deployment of Machine Learning as a Service
- Source :
- CVPR Workshops
- Publication Year :
- 2018
-
Abstract
- With the widespread use of machine learning (ML) techniques, ML as a service has become increasingly popular. In this setting, an ML model resides on a server and users can query it with their data via an API. However, if the user's input is sensitive, sending it to the server is undesirable and sometimes even legally not possible. Equally, the service provider does not want to share the model by sending it to the client for protecting its intellectual property and pay-per-query business model. In this paper, we propose MLCapsule, a guarded offline deployment of machine learning as a service. MLCapsule executes the model locally on the user's side and therefore the data never leaves the client. Meanwhile, MLCapsule offers the service provider the same level of control and security of its model as the commonly used server-side execution. In addition, MLCapsule is applicable to offline applications that require local execution. Beyond protecting against direct model access, we couple the secure offline deployment with defenses against advanced attacks on machine learning models such as model stealing, reverse engineering, and membership inference.
- Subjects :
- Service (business)
Reverse engineering
FOS: Computer and information sciences
Computer Science - Machine Learning
Information privacy
Computer Science - Cryptography and Security
Computer Science - Artificial Intelligence
Computer science
business.industry
Control (management)
Machine Learning (stat.ML)
Service provider
Business model
Machine learning
computer.software_genre
Data modeling
Machine Learning (cs.LG)
Artificial Intelligence (cs.AI)
Statistics - Machine Learning
Software deployment
Artificial intelligence
business
computer
Cryptography and Security (cs.CR)
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Journal :
- CVPR Workshops
- Accession number :
- edsair.doi.dedup.....5a806cebdb0defec4a024bc9337843dd