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Sugiri Pranata

3 accepted papers

2023

Invariant Feature Regularization for Fair Face Recognition

ICCV 2023poster

Fair face recognition is all about learning invariant feature that generalizes to unseen faces in any demographic group. Unfortunately, face datasets inevitably capture the imbalanced demographic attributes that are ubiquitous in real-world observations, and the model learns biased feature that gene…

Cited by 11PDFcodeScholar
2022

Equivariance and Invariance Inductive Bias for Learning from Insufficient Data

ECCV 2022poster

"We are interested in learning robust models from insufficient data, without the need for any externally pre-trained checkpoints. First, compared to sufficient data, we show why insufficient data renders the model more easily biased to the limited training environments that are usually different fro…

2018

Towards Pose Invariant Face Recognition in the Wild

CVPR 2018poster

Pose variation is one key challenge in face recognition. As opposed to current techniques for pose invariant face recognition, which either directly extract pose invariant features for recognition, or first normalize profile face images to frontal pose before feature extraction, we argue that it is…

Cited by 300SourcePDFScholar