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VQ-SGen: A Vector Quantized Stroke Representation for Creative Sketch Generation

1 Pith paper cite this work. Polarity classification is still indexing.

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abstract

This paper presents VQ-SGen, a novel algorithm for high-quality creative sketch generation. Recent approaches have framed the task as pixel-based generation either as a whole or part-by-part, neglecting the intrinsic and contextual relationships among individual strokes, such as the shape and spatial positioning of both proximal and distant strokes. To overcome these limitations, we propose treating each stroke within a sketch as an entity and introducing a vector-quantized (VQ) stroke representation for fine-grained sketch generation. Our method follows a two-stage framework - in stage one, we decouple each stroke's shape and location information to ensure the VQ representation prioritizes stroke shape learning. In stage two, we feed the precise and compact representation into an auto-decoding Transformer to incorporate stroke semantics, positions, and shapes into the generation process. By utilizing tokenized stroke representation, our approach generates strokes with high fidelity and facilitates novel applications, such as text or class label conditioned generation and sketch completion. Comprehensive experiments demonstrate our method surpasses existing state-of-the-art techniques on the CreativeSketch dataset, underscoring its effectiveness.

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cs.CV 1

years

2026 1

verdicts

CONDITIONAL 1

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Draw This First

cs.CV · 2026-08-12 · conditional · novelty 7.0

Draw order is encoded as color in an image, generated by a pretrained diffusion transformer, then decoded into ordered vector strokes whose order follows language instructions.

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  • Draw This First cs.CV · 2026-08-12 · conditional · none · ref 15 · internal anchor

    Draw order is encoded as color in an image, generated by a pretrained diffusion transformer, then decoded into ordered vector strokes whose order follows language instructions.