A privacy-preserving approach for cloud-based protein fold recognition

被引:0
|
作者
Unal, Ali Burak [1 ,3 ]
Pfeifer, Nico [2 ,3 ]
Akgun, Mete [1 ,3 ]
机构
[1] Univ Tubingen, Dept Comp Sci, Med Data Privacy & Privacy Preserving Machine Lear, D-72076 Tubingen, Germany
[2] Univ Tubingen, Dept Comp Sci, Methods Med Informat, D-72076 Tubingen, Germany
[3] Univ Tubingen, Inst Bioinformat & Med Informat IBMI, Dept Comp Sci, D-72076 Tubingen, Germany
来源
PATTERNS | 2024年 / 5卷 / 09期
关键词
PREDICTION; DATABASE;
D O I
10.1016/j.patter.2024.101023
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
The complexity and cost of training machine learning models have made cloud-based machine learning as a service (MLaaS) attractive for businesses and researchers. MLaaS eliminates the need for in-house expertise by providing pre-built models and infrastructure. However, it raises data privacy and model security concerns, especially in medical fields like protein fold recognition. We propose a secure three-party computation-based MLaaS solution for privacy-preserving protein fold recognition, protecting both sequence and model privacy. Our efficient private building blocks enable complex operations privately, including addition, multiplication, multiplexer with a different methodology, most-significant bit, modulus conversion, and exact exponential operations. We demonstrate our privacy-preserving recurrent kernel network (RKN) solution, showing that it matches the performance of non-private models. Our scalability analysis indicates linear scalability with RKN parameters, making it viable for real-world deployment. This solution holds promise for converting other medical domain machine learning algorithms to privacy-preserving MLaaS using our building blocks.
引用
收藏
页数:10
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