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FaceSnap: Real-Time Personalized Lightstage Facial Performance Capture

Paper recorded by Signals 4 on 2026-08-31 in cs.CV. Abstract reproduced from arXiv; link to the original below.

Published 2026-08-31 on arXiv · recorded by Signals 4 on 2026-09-01

Category: cs.CV · 计算机视觉 · first seen 2026-09-01

Abstract

Lightstage facial capture produces production-quality digital humans, but it is resource and labor-intensive. Multi-camera setups, hours of computation, and massive data storage create bottlenecks that hinder iterative workflows. This paper introduces FaceSnap, an end-to-end framework that streamlines capture via a two-stage approach. First, a one-time multi-view optimization from a range-of-motio

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#201 most recent of 237 cs.CV papers we have recorded · ↑ newer: Identity-Conditioned Latent Consistency Distillation for Face Synthesi · ↓ older: Analytic Dynamics: Learning Physics-Grounded Representation for Fast I
Cite this page: FaceSnap: Real-Time Personalized Lightstage Facial Performance Capture: the #201 most recent of 237 cs.CV papers we have recorded (as of 2026-08-31). Source: Signals 4 (Signals API) — https://data.jiangzhang.ca/signals4/t/papers/facesnap-real-time-personalized-lightstage-facial-performance-capture.html
Free to quote with attribution to “Signals 4 (Signals API)”. Machine-readable: papers.json
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