Automatic Face Understanding: Recognizing Families in Photos
Joseph P Robinson

TL;DR
This paper introduces a large kinship database, FIW, with novel clustering for labeling, and demonstrates its effectiveness in kinship recognition, face landmark localization, and bias measurement, advancing state-of-the-art methods.
Contribution
The paper presents the creation of the FIW database, novel clustering labeling, improved kinship recognition models, a new landmark localization objective, adversarial training with unlabeled data, and bias measurement tools.
Findings
FIW shows significant improvements over previous datasets.
CNN models trained on FIW achieve state-of-the-art results.
The proposed landmark localization method outperforms existing approaches.
Abstract
We built the largest database for kinship recognition. The data were labeled using a novel clustering algorithm that used label proposals as side information to guide more accurate clusters. Great savings in time and human input was had. Statistically, FIW shows enormous gains over its predecessors. We have several benchmarks in kinship verification, family classification, tri-subject verification, and large-scale search and retrieval. We also trained CNNs on FIW and deployed the model on the renowned KinWild I and II to gain SOTA. Most recently, we further augmented FIW with MM. Now, video dynamics, audio, and text captions can be used in the decision making of kinship recognition systems. We expect FIW will significantly impact research and reality. Additionally, we tackled the classic problem of facial landmark localization. A majority of these networks have objectives based on L1 or…
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Taxonomy
TopicsFace recognition and analysis · Face and Expression Recognition · Biometric Identification and Security
