NeuSEditor

From Multi-View Images to Text-Guided Neural Surface Edits

Conference Paper (2026)
Author(s)

Nail Ibrahimli (TU Delft - Architecture and the Built Environment)

Julian F.P. Kooij (TU Delft - Mechanical Engineering)

Liangliang Nan (TU Delft - Architecture and the Built Environment)

Research Group
Urban Data Science
DOI related publication
https://doi.org/10.1109/3DV69130.2026.00135 Final published version
More Info
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Publication Year
2026
Language
English
Research Group
Urban Data Science
Pages (from-to)
1403-1413
Publisher
IEEE
ISBN (electronic)
9798331573126
Event
13th International Conference on 3D Vision, 3DV 2026 (2026-03-20 - 2026-03-23), Vancouver, Canada
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Abstract

Implicit surface representations are valued for their compactness and continuity, but they pose significant challenges for editing. Despite recent advancements, existing methods often fail to preserve identity and maintain geometric consistency during editing. To address these challenges, we present NeuSEditor, a novel method for text-guided editing of neural implicit surfaces derived from multi-view images. NeuSEditor introduces an identity-preserving architecture that efficiently separates scenes into foreground and background, enabling precise modifications without altering the scene-specific elements. Our geometry-aware distillation loss significantly enhances rendering and geometric quality. Our method simplifies the editing workflow by eliminating the need for continuous dataset updates and source prompting. NeuSEditor outperforms recent state-of-the-art methods, delivering superior quantitative and qualitative results. for visual results, visit: neuseditor.github.io

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