arXiv:2409.10523cs.CVcs.AI2024-09被引 49

用AI实时监测野生动物,防盗猎、护生态

Harnessing Artificial Intelligence for Wildlife Conservation

  • 结合视觉与热成像数据,用CNN和Transformer识别动物与盗猎物
  • 支持实时反盗猎响应和长期物种监测,多地区验证有效
  • 适合生态保护者、科研机构及政策制定者参考

全球生物多样性急剧下降,亟需创新保护策略。本文聚焦于 Conservation AI 平台,利用机器学习与计算机视觉技术,通过可见光与热红外摄像头检测并分类动物、人类及盗猎相关物体。平台采用卷积神经网络(CNN)和 Transformer 架构处理数据,实现对濒危物种的监测。实时检测可快速应对盗猎等紧急事件,非实时分析则支持长期生物多样性监测与栖息地健康评估。欧洲、北美、非洲和东南亚的案例研究证明该平台在物种识别、生物多样性监测和盗猎防范方面成效显著。文章还讨论了数据质量、模型准确率及后勤限制等挑战,并提出未来方向:技术升级、地理扩展及与当地社区和政策制定者的深度合作。Conservation AI 为应对野生动物保护的紧迫挑战提供了可扩展、可适应的全球解决方案。

原文摘要 · Abstract (English)

The rapid decline in global biodiversity demands innovative conservation strategies. This paper examines the use of artificial intelligence (AI) in wildlife conservation, focusing on the Conservation AI platform. Leveraging machine learning and computer vision, Conservation AI detects and classifies animals, humans, and poaching-related objects using visual spectrum and thermal infrared cameras. The platform processes this data with convolutional neural networks (CNNs) and Transformer architectures to monitor species, including those which are critically endangered. Real-time detection provides the immediate responses required for time-critical situations (e.g. poaching), while non-real-time analysis supports long-term wildlife monitoring and habitat health assessment. Case studies from Europe, North America, Africa, and Southeast Asia highlight the platform's success in species identification, biodiversity monitoring, and poaching prevention. The paper also discusses challenges related to data quality, model accuracy, and logistical constraints, while outlining future directions involving technological advancements, expansion into new geographical regions, and deeper collaboration with local communities and policymakers. Conservation AI represents a significant step forward in addressing the urgent challenges of wildlife conservation, offering a scalable and adaptable solution that can be implemented globally.

AI保护盗猎监测智能识别

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