arXiv:2504.14583cs.CVcs.CY2025-04中稿 · ICLR被引 1

用街景图像和生成模型估算城市森林健康状况

Using street view imagery and deep generative modeling for estimating the health of urban forests

  • 基于街景图、树种数据和气象信息,用图像翻译网络预测森林健康指标
  • 可生成NDVI和CTD两个健康参数,与实地传感器数据对比验证
  • 适合城市管理者做大规模森林监测,无需复杂设备

健康的城市森林由多样化的树木和灌木组成,在缓解气候变化方面发挥关键作用,例如提供遮荫以节约能源,拦截雨水以减少洪涝和土壤侵蚀。传统监测方法依赖人工巡检和主观评估,成本高且难以规模化,尤其对资源有限的城市不适用。现有基于地面传感或卫星多光谱成像的方法,分别受限于部署复杂性和空间分辨率不足。本文提出一种新方法:仅使用街景影像、树种清单和气象数据,通过图像到图像的翻译网络估计城市森林的两个健康参数——归一化植被指数(NDVI)和冠层温度差(CTD)。我们通过手持多光谱与热成像传感器开展实地采集,将生成结果与真实数据进行对比。随着Google Street View、Mapillary等街景平台的普及,该方法有望实现城市级森林管理的高效覆盖。

原文摘要 · Abstract (English)

Healthy urban forests comprising of diverse trees and shrubs play a crucial role in mitigating climate change. They provide several key advantages such as providing shade for energy conservation, and intercepting rainfall to reduce flood runoff and soil erosion. Traditional approaches for monitoring the health of urban forests require instrumented inspection techniques, often involving a high amount of human labor and subjective evaluations. As a result, they are not scalable for cities which lack extensive resources. Recent approaches involving multi-spectral imaging data based on terrestrial sensing and satellites, are constrained respectively with challenges related to dedicated deployments and limited spatial resolutions. In this work, we propose an alternative approach for monitoring the urban forests using simplified inputs: street view imagery, tree inventory data and meteorological conditions. We propose to use image-to-image translation networks to estimate two urban forest health parameters, namely, NDVI and CTD. Finally, we aim to compare the generated results with ground truth data using an onsite campaign utilizing handheld multi-spectral and thermal imaging sensors. With the advent and expansion of street view imagery platforms such as Google Street View and Mapillary, this approach should enable effective management of urban forests for the authorities in cities at scale.

城市森林街景图像生成模型健康监测

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