Privacy-Preserving Semantic Segmentation Using Vision Transformer

Author:

Kiya HitoshiORCID,Nagamori TeruORCID,Imaizumi ShokoORCID,Shiota SayakaORCID

Abstract

In this paper, we propose a privacy-preserving semantic segmentation method that uses encrypted images and models with the vision transformer (ViT), called the segmentation transformer (SETR). The combined use of encrypted images and SETR allows us not only to apply images without sensitive visual information to SETR as query images but to also maintain the same accuracy as that of using plain images. Previously, privacy-preserving methods with encrypted images for deep neural networks have focused on image classification tasks. In addition, the conventional methods result in a lower accuracy than models trained with plain images due to the influence of image encryption. To overcome these issues, a novel method for privacy-preserving semantic segmentation is proposed by using an embedding that the ViT structure has for the first time. In experiments, the proposed privacy-preserving semantic segmentation was demonstrated to have the same accuracy as that of using plain images under the use of encrypted images.

Funder

JSPS KAKENHI

Support Center for Advanced Telecommunications Technology Research Foundation

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Computer Graphics and Computer-Aided Design,Computer Vision and Pattern Recognition,Radiology, Nuclear Medicine and imaging

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2. Efficient Fine-Tuning with Domain Adaptation for Privacy-Preserving Vision Transformer;APSIPA Transactions on Signal and Information Processing;2024

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