CVApr 22, 2018

Matching Fingerphotos to Slap Fingerprint Images

arXiv:1804.08122v120 citations
Originality Incremental advance
AI Analysis

This enables low-cost biometric authentication via standard Android phones for applications like banking and healthcare in developing countries, though it is incremental compared to contact-based methods.

The paper tackled the problem of matching fingerphotos from smartphone cameras to legacy slap fingerprint images, achieving a True Accept Rate of 95.79% at a False Accept Rate of 0.1% using a commercial fingerprint matcher.

We address the problem of comparing fingerphotos, fingerprint images from a commodity smartphone camera, with the corresponding legacy slap contact-based fingerprint images. Development of robust versions of these technologies would enable the use of the billions of standard Android phones as biometric readers through a simple software download, dramatically lowering the cost and complexity of deployment relative to using a separate fingerprint reader. Two fingerphoto apps running on Android phones and an optical slap reader were utilized for fingerprint collection of 309 subjects who primarily work as construction workers, farmers, and domestic helpers. Experimental results show that a True Accept Rate (TAR) of 95.79 at a False Accept Rate (FAR) of 0.1% can be achieved in matching fingerphotos to slaps (two thumbs and two index fingers) using a COTS fingerprint matcher. By comparison, a baseline TAR of 98.55% at 0.1% FAR is achieved when matching fingerprint images from two different contact-based optical readers. We also report the usability of the two smartphone apps, in terms of failure to acquire rate and fingerprint acquisition time. Our results show that fingerphotos are promising to authenticate individuals (against a national ID database) for banking, welfare distribution, and healthcare applications in developing countries.

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