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The Agroecological Matrix As Alternative to the Land-sparing/agriculture Intensification Model

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Specialty Science
Date 2010 Mar 27
PMID 20339080
Citations 46
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Abstract

Among the myriad complications involved in the current food crisis, the relationship between agriculture and the rest of nature is one of the most important yet remains only incompletely analyzed. Particularly in tropical areas, agriculture is frequently seen as the antithesis of the natural world, where the problem is framed as one of minimizing land devoted to agriculture so as to devote more to conservation of biodiversity and other ecosystem services. In particular, the "forest transition model" projects an overly optimistic vision of a future where increased agricultural intensification (to produce more per hectare) and/or increased rural-to-urban migration (to reduce the rural population that cuts forest for agriculture) suggests a near future of much tropical aforestation and higher agricultural production. Reviewing recent developments in ecological theory (showing the importance of migration between fragments and local extinction rates) coupled with empirical evidence, we argue that there is little to suggest that the forest transition model is useful for tropical areas, at least under current sociopolitical structures. A model that incorporates the agricultural matrix as an integral component of conservation programs is proposed. Furthermore, we suggest that this model will be most successful within a framework of small-scale agroecological production.

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References
1.
Perfecto I, Vandermeer J . Quality of Agroecological Matrix in a Tropical Montane Landscape: Ants in Coffee Plantations in Southern Mexico. Conserv Biol. 2022; 16(1):174-182. DOI: 10.1046/j.1523-1739.2002.99536.x. View

2.
Foufopoulos J, Ives A . Reptile Extinctions on Land-Bridge Islands: Life-History Attributes and Vulnerability to Extinction. Am Nat. 2018; 153(1):1-25. DOI: 10.1086/303149. View

3.
Kleinn L, Corrales C, Morales D . Forest area in Costa Rica: a comparative study of tropical forest cover estimates over time. Environ Monit Assess. 2002; 73(1):17-40. DOI: 10.1023/a:1012659129083. View

4.
Perfecto I, Vandermeer J . Biodiversity conservation in tropical agroecosystems: a new conservation paradigm. Ann N Y Acad Sci. 2008; 1134:173-200. DOI: 10.1196/annals.1439.011. View

5.
Ricketts T . The matrix matters: effective isolation in fragmented landscapes. Am Nat. 2008; 158(1):87-99. DOI: 10.1086/320863. View