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Extraction of Plant Ecological Indicators and Use of Environmental Simulation Methods Based on 3D Plant Growth Models: A Case Study of Wuhan’s Daijia Lake Park

Forests · 19 Sept 2025 · 10.3390/f16091487

Abstract

The acquisition of plant ecological indicators, such as leaf area index and leaf area density values, typically relies on labor-intensive field sampling and measurements, which are often time-consuming and hinder large-scale application. As different plant ecological indicators are closely related to plants’ geometric characteristics, the development of dynamic correlation and prediction methods for relevant indicators has become an important research topic. However, existing 3D plant models are mainly used for visualization purposes, which cannot accurately reflect the plant’s growth process or geometric characteristics. This study presents a workflow for parametric 3D plant modeling and ecological indicator analysis, integrating dynamic plant modeling, indicator calculation, and microclimate simulation. With the established plant model, a method for calculating and analyzing ecological indicators, including the leaf area index, leaf area density, aboveground biomass, and aboveground carbon storage, was then proposed. A method for exporting the model-generated data into ENVI-met v.5.0 to simulate the microclimate environment was also established. Then, by taking Daijia Lake Park as an example, this study utilized site planting construction drawings and field survey data to perform parametric modeling of 21,685 on-site trees from 65 species at three different growth stages using Blender v.4.0 and The Grove plugin v.10. The generated plant model’s accuracy was then verified using the 3D IoU ratio between the models and on-site scanned point cloud data. Plant ecological indicators at various stages were then extracted and exported to ENVI-met for microclimate analysis. The workflow integrates the simulation of plant growth dynamics and their interactions with environmental factors. It can also be used for scenario-based predictions in planting design and serves as a basis for urban green space monitoring and management.

Plant phenotyping relevance

3D植物モデルを用いて葉面積指数・葉面積密度・地上部バイオマス等の植物形質を抽出するワークフローを開発し、点群データとの3D IoUで精度検証しているため、方法が中心である。

abstractThis study presents a workflow for parametric 3D plant modeling and ecological indicator analysis, integrating dynamic plant modeling, indicator calculation, and microclimate simulation.
abstractWith the established plant model, a method for calculating and analyzing ecological indicators, including the leaf area index, leaf area density, aboveground biomass, and aboveground carbon storage, was then proposed.
abstractThe generated plant model’s accuracy was then verified using the 3D IoU ratio between the models and on-site scanned point cloud data.

Code and data availability

The supplied blocks describe a parametric 3D plant modeling and ecological indicator workflow for Daijia Lake Park, but contain no authors' public dataset, code, model checkpoints, or supplement with paper-specific phenotyping data. All URLs in the allowed list are cited prior-work resources (e.g., the U.S. Forest i-TE

No evidence-backed public reproduction asset is currently recorded.

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