Land use optimization tool for sustainable intensification of high-latitude agricultural systems

被引:37
作者
Peltonen-Sainio, Pirjo [1 ]
Jauhiainen, Lauri [2 ]
Laurila, Heikki [1 ]
Sorvali, Jaana [1 ]
Honkavaara, Eija [3 ]
Wittke, Samantha [3 ,4 ]
Karjalainen, Mika [3 ]
Puttonen, Eetu [3 ]
机构
[1] Nat Resources Inst Finland Luke, Latokartanonkaari 9, FI-00790 Helsinki, Finland
[2] Nat Resources Inst Finland Luke, FI-31600 Jokioinen, Finland
[3] Natl Land Survey Finland NLS, Finnish Geospatial Res Inst FGI, Geodeetinrinne 2, FI-02430 Masala, Finland
[4] Aalto Univ, Dept Built Environm, Otakaari 4, FI-02150 Espoo, Finland
关键词
Afforestation; Crop production; Decision-making; Extensification; Field parcel; Intensification; Land allocation; Land use change; Remote sensing; Sustainability; TRADE-OFFS; MULTIOBJECTIVE OPTIMIZATION; ECOSYSTEM SERVICES; DECISION-MAKING; YIELD; LANDSCAPES; BIODIVERSITY; ALLOCATION; DIVERSITY; FARMLAND;
D O I
10.1016/j.landusepol.2019.104104
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Recent studies assessing agricultural policies, including the EU's Agri-Environment Scheme, have shown that these have been successful in attaining some environmental goals. In Finland, however, the economic situation of farms has dramatically fallen and hence, the actions do not result in social acceptability. Sustainable intensification is a means to combine the three dimensions of sustainability: environmental, economic and social. Here we introduce a novel land use optimization and planning tool for the sustainable intensification of high-latitude agricultural systems. The main rationale for the development of the tool was to achieve a systematic and comprehensive conception for land allocation across Finland, where field parcels vary substantially in their conditions. The developed tool has a three-step scoring system based on seven physical characteristics (parcel size, shape, slope, distance to the farm center and waterways, soil type and logistic advantages) and the productivity of field parcels. The productivity estimates are based on vegetation indices derived from optical satellite data. The tool allocates virtually all > 1 million field parcels in Finland either to sustainable intensification, extensification or afforestation. The tool is dynamic in the sense that its boundary values for land allocation can be fixed according to changes in social targets and supporting policies. Additionally, it can be applied year after year by acknowledging new available data, e.g., on vegetation indices and field parcel re-arrangements between farms. Furthermore, it can be applied to all farm types and across Finland. It is a tool for land use planning, implementation and monitoring, but its thorough implementation calls for further development of policy instruments, which are currently more supportive towards land sharing than land sparing activities.
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页数:10
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