SATURDAY, OCTOBER 10, 2026|No. 18148
Technology · Computer Graphics

New Method Uses 2D Gaussian Splatting for Advanced Line Art Vectorization

Researchers have developed a novel approach to vectorizing line art and sketches, utilizing 2D Gaussian splatting for efficient and high-quality results.

A visual representation of line art being transformed into vector graphics using advanced algorithms.
A visual representation of line art being transformed into vector graphics using advanced algorithms. · Photo by BoliviaInteligente on Unsplash
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2D Gaussian Splatting for Bézier Spline Line Art Vectorization

In this work, we leverage several recent advances in the field to introduce a new state-of-the-art method for line art vectorization.

Abstract

Vectorization of line art and sketches is an important problem in computer graphics and remains an active area of research. In this paper, we leverage several recent advances in the field to introduce a new state-of-the-art method for line art vectorization. First, we show that it is possible to go beyond heuristics to extract a meaningful set of strokes from a raster image. We leverage both depth prediction and semantic feature extraction models to propose a more principled approach to split the skeleton graph of the sketch into subgraphs to initialize a set of strokes, producing results that better align with artistic intent. Second, we model strokes as Bézier curves with both geometric and appearance components, and employ 2D Gaussian splatting for fast, differentiable rendering. This formulation enables efficient fitting of strokes to the input while jointly optimizing control points and brush texture. We further demonstrate promising results on video by incorporating temporal tracking and adaptive keyframe introduction. Our evaluation shows that we achieve state-of-the-art results for image reconstruction, while being fast and producing strokes of high quality. More importantly, the fitting is highly compatible with user input, through the correction of the splines and the selection of optimization parameters.

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