以农林业和生态系统服务为重点的树木选择和种植决策支持系统原型

Forests Pub Date : 2024-07-14 DOI:10.3390/f15071219
Neelesh Yadav, Shrey Rakholia, R. Yosef
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引用次数: 0

摘要

印度旁遮普省面临森林覆盖率低的挑战,同时对可持续土地利用实践的需求日益增长。使用 R Shiny 框架开发的决策支持系统整合了生态、社会和农业商业标准,以促进植树造林的科学知识决策。该 DSS 中的模块包括基于综合树种属性的树种选择工具、利用层次分析法(AHP)绘制的基于 GIS 的树种适宜性地图模块,以及来自权威数据库的造林实践信息模块。结合复杂的统计和空间分析(如 NMDS 和 AHP-GIS),该 DSS 减少了 SDM 中的数据冗余,同时在数据集处理过程中纳入了广泛的文献研究。与已实现的生态位适宜性相比,该研究强调了基于基本生态位的适宜性的必要性。它强调了解决生态系统服务、农业商业方面问题以及增强造林知识的重要性。此外,该研究还强调了当地利益相关者参与树种选择的重要性,特别是让农民和其他种植者参与进来,以确保社区的参与和支持。设计支持系统支持农林业倡议,并可应用于城市树木管理和政府项目,强调在每个步骤中使用科学文献,而不是完全依赖当地知识。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Prototype Decision Support System for Tree Selection and Plantation with a Focus on Agroforestry and Ecosystem Services
This study presents the development and application of a prototype decision support system (DSS) for tree selection specifically for Punjab, India, a region facing challenges of low forest cover and an increasing demand for sustainable land use practices. The DSS developed using the R Shiny framework integrates ecological, social, and agro-commercial criteria to facilitate scientific knowledge decision making in tree plantation. The modules in this DSS include a tree selection tool based on comprehensive species attributes, a GIS-based tree suitability map module utilizing an Analytical Hierarchical Process (AHP), and a silviculture practice information module sourced from authoritative databases. Combining sophisticated statistical and spatial analysis, such as NMDS and AHP-GIS, this DSS mitigates data redundancy in SDM while incorporating extensive bibliographic research in dataset processing. The study highlights the necessity of fundamental niche-based suitability in comparison to realized niche suitability. It emphasizes on the importance of addressing ecosystem services, agro-commercial aspects, and enhancing silvicultural knowledge. Additionally, the study underscores the significance of local stakeholder engagement in tree selection, particularly involving farmers and other growers, to ensure community involvement and support. The DSS supports agroforestry initiatives and finds applications in urban tree management and governmental programs, emphasizing the use of scientific literature at each step, in contrast to relying solely on local knowledge.
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