CVFeb 12

Stroke of Surprise: Progressive Semantic Illusions in Vector Sketching

arXiv:2602.12280v1
Originality Incremental advance
AI Analysis

This work addresses a novel visual illusion task for creative applications, but it is incremental as it builds on existing generative frameworks.

The paper tackles the problem of creating progressive semantic illusions in vector sketching, where a single sketch transforms semantically through sequential stroke additions, and demonstrates that their method significantly outperforms state-of-the-art baselines in recognizability and illusion strength.

Visual illusions traditionally rely on spatial manipulations such as multi-view consistency. In this work, we introduce Progressive Semantic Illusions, a novel vector sketching task where a single sketch undergoes a dramatic semantic transformation through the sequential addition of strokes. We present Stroke of Surprise, a generative framework that optimizes vector strokes to satisfy distinct semantic interpretations at different drawing stages. The core challenge lies in the "dual-constraint": initial prefix strokes must form a coherent object (e.g., a duck) while simultaneously serving as the structural foundation for a second concept (e.g., a sheep) upon adding delta strokes. To address this, we propose a sequence-aware joint optimization framework driven by a dual-branch Score Distillation Sampling (SDS) mechanism. Unlike sequential approaches that freeze the initial state, our method dynamically adjusts prefix strokes to discover a "common structural subspace" valid for both targets. Furthermore, we introduce a novel Overlay Loss that enforces spatial complementarity, ensuring structural integration rather than occlusion. Extensive experiments demonstrate that our method significantly outperforms state-of-the-art baselines in recognizability and illusion strength, successfully expanding visual anagrams from the spatial to the temporal dimension. Project page: https://stroke-of-surprise.github.io/

Foundations

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