TFace Save

A trusty face analysis research platform developed by Tencent Youtu Lab

Project README

Introduction

TFace: A trusty face analysis research platform developed by Tencent Youtu Lab. It provides a high-performance distributed training framework and releases our efficient methods implementations. Some of the algorithms are self-developed, and we believe the released codes benefits researchers to follow.

This project consists of several modules: Face Recognition, Face Security, Face Quality and Facial Attribute.

Face Recognition

This module implements various state-of-art algorithms for face recognition.

Paper List:

2022.9: Privacy-Preserving Face Recognition with Learnable Privacy Budgets in Frequency Domain accepted by ECCV2022. [paper]

2022.9: DuetFace: Collaborative Privacy-Preserving Face Recognition via Channel Splitting in the Frequency Domain accepted by ACMMM2022. [paper]

2022.6: Evaluation-oriented knowledge distillation for deep face recognition accepted by CVPR2022. [paper]

2021.3: Consistent Instance False Positive Improves Fairness in Face Recognition accepted by CVPR2021. [paper]

2021.3: Spherical Confidence Learning for Face Recognition accepted by CVPR2021. [paper]

2020.8: Improving Face Recognition from Hard Samples via Distribution Distillation Loss accepted by ECCV2020. [paper]

2020.3: Curricularface: adaptive curriculum learning loss for deep face recognition has been accepted by CVPR2020. [paper]

Face Security

This module implements various state-of-art algorithms for face security.

Paper List:

2023.09: Sibling-Attack: Rethinking Transferable Adversarial Attacks against Face Recognition accepted by CVPR2023

2021.12: Dual Contrastive Learning for General Face Forgery Detection accepted by AAAI2022

2021.12: Exploiting Fine-grained Face Forgery Clues via Progressive Enhancement Learning accepted by AAAI2022

2021.12: Delving into the Local: Dynamic Inconsistency Learning for DeepFake Video Detection accepted by AAAI2022

2021.12: Feature Generation and Hypothesis Verification for Reliable Face Anti-Spoofing accepted by AAAI2022

2021.07: Spatiotemporal Inconsistency Learning for DeepFake Video Detection accepted by ACM MM2021[paper] [Analysis]

2021.07: Adaptive Normalized Representation Learning for Generalizable Face Anti-Spoofing accepted by ACM MM2021[paper]

2021.07: Structure Destruction and Content Combination for Face Anti-Spoofing accepted by IJCB2021[paper]

2021.04: Adv-Makeup: A New Imperceptible and Transferable Attack on Face Recognition accepted by IJCAI2021[paper]

2021.04: Dual Reweighting Domain Generalization for Face Presentation Attack Detection accepted by IJCAI2021[paper]

2021.03: Delving into Data: Effectively Substitute Training for Black-box Attack accepted by CVPR2021. [paper]

2020.12: Generalizable Representation Learning for Mixture Domain Face Anti-Spoofing accepted by AAAI2021. [paper]

2020.12: Local Relation Learning for Face Forgery Detection accepted by AAAI2021. [paper]

2020.06: Face Anti-Spoofing via Disentangled Representation Learning accepted by ECCV2020. [paper]

Face Quality

This module implements the SDD-FIQA algorithm for face quality.

Paper List:

2021.3: SDD-FIQA: Unsupervised Face Image Quality Assessment with Similarity Distribution Distance accepted by CVPR2021. [paper]

Facial Attribute

This module implements the M3DFEL algorithm for facial attribute.

Paper List:

2023.6: Rethinking the Learning Paradigm for Dynamic Facial Expression Recognition accepted by CVPR2023. [paper]

Open Source Agenda is not affiliated with "TFace" Project. README Source: Tencent/TFace
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