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Round-Efficient Secure Inference Based on Masked Secret Sharing for Quantized Neural Network
by
Wei, Weiming
, Tang, Chunming
, Chen, Yucheng
in
Analysis
/ Bandwidths
/ Boolean
/ Communication
/ Inference
/ masked secret sharing
/ Methods
/ Multiplication & division
/ Network latency
/ Neural networks
/ Protocol
/ quantized neural network
/ Quantum computing
/ Safety and security measures
/ Secrecy
/ secure inference
/ Semantics
/ Wide area networks
2023
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Round-Efficient Secure Inference Based on Masked Secret Sharing for Quantized Neural Network
by
Wei, Weiming
, Tang, Chunming
, Chen, Yucheng
in
Analysis
/ Bandwidths
/ Boolean
/ Communication
/ Inference
/ masked secret sharing
/ Methods
/ Multiplication & division
/ Network latency
/ Neural networks
/ Protocol
/ quantized neural network
/ Quantum computing
/ Safety and security measures
/ Secrecy
/ secure inference
/ Semantics
/ Wide area networks
2023
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Do you wish to request the book?
Round-Efficient Secure Inference Based on Masked Secret Sharing for Quantized Neural Network
by
Wei, Weiming
, Tang, Chunming
, Chen, Yucheng
in
Analysis
/ Bandwidths
/ Boolean
/ Communication
/ Inference
/ masked secret sharing
/ Methods
/ Multiplication & division
/ Network latency
/ Neural networks
/ Protocol
/ quantized neural network
/ Quantum computing
/ Safety and security measures
/ Secrecy
/ secure inference
/ Semantics
/ Wide area networks
2023
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Round-Efficient Secure Inference Based on Masked Secret Sharing for Quantized Neural Network
Journal Article
Round-Efficient Secure Inference Based on Masked Secret Sharing for Quantized Neural Network
2023
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Overview
Existing secure multiparty computation protocol from secret sharing is usually under this assumption of the fast network, which limits the practicality of the scheme on the low bandwidth and high latency network. A proven method is to reduce the communication rounds of the protocol as much as possible or construct a constant-round protocol. In this work, we provide a series of constant-round secure protocols for quantized neural network (QNN) inference. This is given by masked secret sharing (MSS) in the three-party honest-majority setting. Our experiment shows that our protocol is practical and suitable for low-bandwidth and high-latency networks. To the best of our knowledge, this work is the first one where the QNN inference based on masked secret sharing is implemented.
Publisher
MDPI AG,MDPI
Subject
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