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Jizong Zhan

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Preprint Aug 2026

MIRAGE-CAD: Construction-Mediated Multimodal Generation of Executable CAD Programs

Recovering an executable parametric CAD program from an observed object is fundamentally ambiguous, because the same final geometry can result from different construction procedures. We study this problem from four types of input: natural-language descriptions, rendered images, point clouds, and STEP/B-Rep geometry. MIRAGE-CAD maps each input to a shared construction representation and mediates program generation through an explicit construction-plan interface. The resulting Python CAD code is executed by an OpenCASCADE kernel to build the solid and export it as STEP. On 2,500 held-out queries per modality, the system achieves 55.4-70.0% build success and 52.3-66.2% STEP export success without retrieval at inference. Controlled comparisons show that strong reconstruction does not depend on expressing the construction representation as text: a decoder conditioned directly on the continuous representation also reconstructs strongly, while an exposure-matched plan-based decoder shows no detected material loss in per-part geometric fidelity. The explicit plan instead provides a readable and separately measurable intermediate representation whose agreement with the reference construction is informative about downstream execution success. Finally, we show that executable validity, geometric fidelity, and parametric responsiveness can diverge substantially and should therefore be evaluated separately.

Jizong Zhan · 0 citations
Open access Aug 2026

Experimental Study on Displacement Reconstruction of Jacket Structures Based on Static Condensation Inverse Finite Element Method

To address the demand for real-time deformation monitoring of offshore fixed jacket structures, this paper presents an experimental study on displacement reconstruction based on the Static Condensation Inverse Finite Element Method (iFEM-S). A scaled jacket model was constructed and subjected to dynamic loading. An inverse finite element model, incorporating both the main structure and substructures, was established using inverse beam elements. Experimental validation confirms the effectiveness of iFEM-S under realistic operational conditions. The study also analyzes the impact of model fabrication errors, sensor installation deviations, and environmental noise on reconstruction accuracy. The results demonstrate that iFEM-S can effectively monitor the global and substructural responses of jacket platforms. Although local deformations near tubular joints lead to a slight overestimation of reconstructed values, the algorithm exhibits robust performance overall. This research provides experimental support and a theoretical reference for digital health monitoring and high-fidelity state assessment of offshore engineering structures.

Jizong Zhan, Kai Hong, Gangwei Liu · 0 citations

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