Assessing Land Use and Land Cover Change and Farmers’ Perceptions of Deforestation and Land Degradation in South-West Côte d’Ivoire, West Africa
Abstract
:1. Introduction
- -
- How and why is LULC changing in the wider Tai region? What are the trends of each LULC type?
- -
- What are the drivers of LULC change? Which ones are the most relevant direct and indirect driving forces of deforestation and land degradation?
- -
- How reliable is the perception of local farmers?
2. Materials and Methods
2.1. Study Area
2.2. LULC Analysis
2.3. Farmer’s Perceptions
2.3.1. Interviews
2.3.2. Focus Group Discussions and Key-Informant Interviews
2.4. Data Analysis
- Y is the dependent variable indicating the likelihood that Y = 1;
- is the constant term (intercept);
- … are the coefficients of associated independent variables;
- … are the independent variables.
3. Results
3.1. Trends of LULC Change
3.1.1. Classification Accuracy Assessment
3.1.2. LULC Change Analysis
3.1.3. LULC Change Matrix
3.2. Farmers’ Perceptions
3.2.1. Socioeconomic and Demographic Characteristics of Sampled Households
3.2.2. Migration in the Region
3.2.3. Perception of Forest
3.2.4. Drivers of Deforestation and Land Degradation
- Deforestation
- Land degradation
3.2.5. Effects and Benefits of Deforestation
3.2.6. Perceived LULC Trends
3.2.7. Strategies to Reduce and Prevent Deforestation
3.3. Comparison of GIS-Based LULC Trends and Farmers’ Perceptions
4. Discussion
4.1. Trends in LULC Change
4.2. Local People Perceptions
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Osei-Tutu, P.; Nketiah, K.; Kyereh, B.; Owusu-Ansah, M.; Faniyan, J. Hidden Forestry Revealed: Characteristics, Constraints and Opportunities for Small and Medium Forest Enterprises in Ghana; Tropenbos International and International Institute for Environment and Development: London, UK, 2010. [Google Scholar]
- Appiah, M.; Blay, D.; Damnyag, L.; Dwomoh, F.K.; Pappinen, A.; Luukkanen, O. Dependence on forest resources and tropical deforestation in Ghana. Environ. Dev. Sustain. 2009, 11, 471–487. [Google Scholar] [CrossRef]
- Shackleton, C.M.; Shackleton, S.E.; Buiten, E.; Bird, N. The importance of dry woodlands and forests in rural livelihoods and poverty alleviation in South Africa. For. Policy Econ. 2007, 9, 558–577. [Google Scholar] [CrossRef]
- Gerber, N.; Nkonya, E.; von Braun, J. Land Degradation, Poverty and Marginality. In Marginality; Springer Netherlands: Dordrecht, The Netherlands, 2014; pp. 181–202. [Google Scholar] [CrossRef] [Green Version]
- BNETD. Réalisation d’une Étude Sur: Identification, Analyse et Cartographie des Causes de la Déforestation et de la Dégradation des Forêts en Côte d’Ivoire; Bureau National d’Etudes Techniques et de Développement (BNETD): Abidjan, Côte d’Ivoire, 2016.
- FAO. SEP-REDD+. Données Forestières de Base Pour la REDD+ en Côte d’Ivoire: Cartographie de la Dynamique Forestière de 1986 à 2015; FAO: Abidjan, Côte d’Ivoire, 2017. [Google Scholar]
- World Bank. Pour que Demain ne Meure Jamais: La Côte d’Ivoire Face au Changement Climatique; World Bank Group: Washington, DC, USA, 2018. (In French) [Google Scholar]
- Chatelain, C.; Dao, Q.-H.; Gautier, L.; Spichiger, R.-E.; Dao, H.; Gautier, L.; Spichiger, R.-E. Forest cover changes in Côte d’Ivoire and Upper Guinea. In Biodiversity of West African Forests: An Ecological Atlas of Woody Plant Species; Poorter, L., Bongers, F., Kouamé, F.Y.N., Hawthorne, W.D., Eds.; CABI Publishing: Wallingford, UK, 2004; pp. 15–32. [Google Scholar]
- Etc Terra-Rongead; BNETD. Analyse Qualitative des Facteurs de Déforestation et de Dégradation des Forêts en Côte d’Ivoire; Ministère de l’Environnement et du Développement Durable: Abidjan, Côte d’Ivoire, 2016.
- Brou, Y.T.; Oszwald, J.; Bigot, S.; Servat, E. Risques de déforestation dans le domaine permanent de l’État en Côte d’Ivoire: Quel avenir pour ses derniers massifs forestiers? Télédétection 2005, 5, 105–121. [Google Scholar]
- Chatelain, C.; Bakayoko, A.; Martin, P.; Gautier, L. Monitoring tropical forest fragmentation in the Zagné-Taï area (west of Taï National Park, Côte d’Ivoire). Biodivers. Conserv. 2010, 19, 2405–2420. [Google Scholar] [CrossRef]
- Agbo, A.E.; Kouamé, C.; N’Doua, N.D.; Kouassi, A.; Brou, K. Assessment of Cocoa Producers’ Children Nutritional Status in the Nawa Region, Côte d’Ivoire. J. Food Nutr. Res. 2017, 5, 606–613. [Google Scholar] [CrossRef] [Green Version]
- Bitty, E.A.; Gonedele Bi, S.; Bene, J.-C.K.; Kouassi, P.K.; McGraw, W.S. Cocoa Farming and Primate Extirpation Inside Cote d’Ivoire’s Protected Areas. Trop. Conserv. Sci. 2015, 8, 95–113. [Google Scholar] [CrossRef] [Green Version]
- Benhin, J.K.A.; Barbier, E.B. Structural Adjustment Programme, deforestation and biodiversity loss in Ghana. Environ. Resour. Econ. 2004, 27, 337–366. [Google Scholar] [CrossRef] [Green Version]
- Ruf, F.O. Tree crops as deforestation and reforestation agents: The case of cocoa in Côte d’Ivoire and Sulawesi. In Agricultural Technologies and Tropical Deforestation; Angelsen, A., Kaimowitz, D., Eds.; CABI: Wallingford, UK, 2001; pp. 291–315. [Google Scholar] [CrossRef]
- Ruf, F.O.; Zadi, H. Cocoa: From Deforestation to Reforestation. In Proceedings of the First International Workshop on Sustainable Cocoa Growing, Panama City, Panama, 29 March–3 April 1998; p. 36. [Google Scholar]
- Ekanza, S.-P. Pillage, fraude et corruption sur la filière du bois. In Le Modèle Ivoirien en Questions: Crises, Ajustements, Recompositions; Contamin, B., Memel-Fotê, H., Eds.; KARTHALA & ORSTOM: Abidjan, Côte d’Ivoire, 1997; pp. 191–204. [Google Scholar]
- Affou, Y.; Tano, K. La boucle du cacao en Côte d’Ivoire: Une situation migratoire inverse. In Migration, Changements Sociaux et Développement; Quesnel, A., Vimard, P., Eds.; ORSTOM: Paris, France, 1991; pp. 307–315. [Google Scholar]
- Ruf, F.O.; Varlet, F. The myth of zero-deforestation cocoa in Côte d’Ivoire. In Zero Deforestation: A Commitment to Change; Pasiecznik, E.N., Savenije, H., Eds.; Tropenbos International: Wageningen, The Netherlands, 2017; pp. 86–92. [Google Scholar]
- Kolongo, D.T.S.; Decocq, G.; Yao, C.Y.A.; Blom, E.C.; Van Rompaey, R.S.A.R. Plant Species Diversity in the Southern Part of the Taï National Park (Côte d’Ivoire). Biodivers. Conserv. 2006, 15, 2123–2142. [Google Scholar] [CrossRef]
- Ruf, F.O.; Schroth, G. Chocolate forests and monocultures: A historical review of cocoa growing and its conflicting role in tropical deforestation and forest conservation. In Agroforestry and Biodiversity Conservation in Tropical Landscapes; Schroth, G., da Fonseca, G.A.B., Harvey, C.A., Gascon, C., Vasconcelos, H.L., Izac, A.-M.N., Eds.; Island Press: Washington, DC, USA, 2004; pp. 107–134. [Google Scholar]
- Ouattara, A.A.; Krouba, G.l.D.; Kouakou, A.C.A.; Adopo, A.l.R.; Fauret, P.; Coulibaly, B.; Kaba, D.; Koffi, Y.J.J.; Assi Kaudjhis, J.P.; Courtin, F. Pression anthropique et dynamique paysagère en zone de forêt ivoirienne dans la région de Méagui. Tropicultura 2018, 36, 183–194. [Google Scholar] [CrossRef]
- Diby, L.; Kouassi, G.; N’Guessan, M.P.; Yao, E.; Oro, F.; Aynekulu, E.; Kassin, E.; Kouame, C.; Coe, R.; Shepherd, K. Cocoa Land Health Surveillance: An Evidence-Based Approach to Sustainable Management of Cocoa Landscapes in the Nawa Region, South-West Côte d’Ivoire; World Agroforestry Centre (ICRAF): Abidjan, Côte d’Ivoire, 2014; Volume 193. [Google Scholar]
- Goula, B.T.A.; Savané, I.; Fadika, V.; Konan, B.; Kouadio, G.B. Impact de la variabilité climatique sur les ressources hydriques des bassins du N’Zo et N’Zi en Côte d’Ivoire (Afrique Tropicale Humide). VertigO 2006, 7, 1–12. [Google Scholar] [CrossRef]
- Goula, B.T.A.; Soro, E.G.; Kouassi, W.; Srohourou, B. Tendances et ruptures au niveau des pluies journalières extrêmes en Côte d’Ivoire (Afrique de l’Ouest). Hydrol. Sci. J. 2012, 57, 1067–1080. [Google Scholar] [CrossRef] [Green Version]
- Läderach, P.; Martinez-Valle, A.; Schroth, G.; Castro, N. Predicting the future climatic suitability for cocoa farming of the world’s leading producer countries, Ghana and Côte d’Ivoire. Clim. Chang. 2013, 119, 841–854. [Google Scholar] [CrossRef] [Green Version]
- Kouassi, J.-L.; Wandan, N.; Mbow, C. Assessing the Impact of Climate Variability on Wildfires in the N’Zi River Watershed in Central Côte d’Ivoire. Fire 2018, 1, 36. [Google Scholar] [CrossRef] [Green Version]
- Barima, Y.S.S.; Kouakou, A.T.M.; Bamba, I.; Sangne, Y.C.; Godron, M.; Andrieu, J.; Bogaert, J. Cocoa crops are destroying the forest reserves of the classified forest of Haut-Sassandra (Ivory Coast). Glob. Ecol. Conserv. 2016, 8, 85–98. [Google Scholar] [CrossRef] [Green Version]
- Kouadio, B.Y.; Dawson, J.O.; Mendoza, G.A. Deforestation and managerial scales in Côte d’Ivoire. J. Sustain. For. 2016, 35, 397–416. [Google Scholar] [CrossRef]
- Lambin, E.F.; Turner, B.L.; Geist, H.J.; Agbola, S.B.; Angelsen, A.; Bruce, J.W.; Coomes, O.T.; Dirzo, R.; Fischer, G.; Folke, C.; et al. The causes of land-use and land-cover change: Moving beyond the myths. Glob. Environ. Chang. 2001, 11, 261–269. [Google Scholar] [CrossRef]
- Lambin, E.F.; Meyfroidt, P. Global land use change, economic globalization, and the looming land scarcity. Proc. Natl. Acad. Sci. USA 2011, 108, 3465–3472. [Google Scholar] [CrossRef] [Green Version]
- Geist, H.J.; Lambin, E.F. Proximate Causes and Underlying Driving Forces of Tropical Deforestation: Tropical forests are disappearing as the result of many pressures, both local and regional, acting in various combinations in different geographical locations. Bioscience 2002, 52, 143–150. [Google Scholar] [CrossRef]
- Kleemann, J.; Baysal, G.; Bulley, H.N.N.; Fürst, C. Assessing driving forces of land use and land cover change by a mixed-method approach in north-eastern Ghana, West Africa. J. Environ. Manag. 2017, 196, 411–442. [Google Scholar] [CrossRef]
- INS. Recensement Général de la Population et de l’Habitat (RGPH) de 2014; Institut National de la Statistique: Abidjan, Côte d’Ivoire, 2014. [Google Scholar]
- Adou, Y.C.Y.; Blom, E.C.; Dengueadhé, K.T.S.; Van Rompaey, R.S.A.R.; N’Guessan, E.K.; Wittebolle, G.; Bongers, F. Diversité Floristique et Végétation dans le Parc National de Taï, Côte d’Ivoire; Tropenbos Côte d’Ivoire séries: Wageningen, The Netherlands, 2005. [Google Scholar]
- Girard, G.; Sircoulon, J.; Touchebeuf, P. Aperçu sur les régimes hydrologiques. In Le Milieu Naturel de la Côte d’Ivoire; Avenard, J.-M., Eldin, M., Girard, G., Touchebeuf, P., Guillaumet, J.-L., Adjanohoun, E., Perraud, A., Eds.; ORSTOM: Paris, France, 1971; pp. 109–155. [Google Scholar]
- Mund, J.-P. Rice production on inland-valleys soils (Bas-Fonds) of the south-west Ivory Coast—Agro-ecological conditions and specific pedological determinations. In Deutscher Tropentag 1999 in Berlin; Tropeng: Berlin, Germany, 1999; p. 12. [Google Scholar]
- Perraud, A. Les sols. In Le Milieu Naturel de la Côte d’Ivoire; Avenard, J.-M., Eldin, M., Girard, G., Touchebeuf, P., Guillaumet, J.-L., Adjanohoun, E., Perraud, A., Eds.; ORSTOM: Paris, France, 1971; pp. 265–391. [Google Scholar]
- Smith Dumont, E.; Gnahoua, G.M.; Ohouo, L.; Sinclair, F.L.; Vaast, P. Farmers in Côte d’Ivoire value integrating tree diversity in cocoa for the provision of ecosystem services. Agrofor. Syst. 2014, 88, 1047–1066. [Google Scholar] [CrossRef] [Green Version]
- Chatelain, C.; Kadjo, B.; Kone, I.; Refisch, J. Relations Faune-Flore Dans le Parc National de Taï: Une Étude Bibliographique; Tropenbos Côte d’Ivoire: Abidjan, Côte d’Ivoire, 2001. [Google Scholar]
- Chatelain, C. Possibilités d’application de l’imagerie Satellitaire à Haute Résolution Pour l’étude des Transformations de la Végétation en Côte d’Ivoire Forestière; Université de Genève: Genève, Switzerland, 1996. [Google Scholar]
- UICN/BRAO. Evaluation de L’efficacité des Aires Protégées: Parcs et Réserves de Côte d’Ivoire; UICN: Gland, Switzerland; Cambridge, UK, 2008. [Google Scholar]
- Martin, C. The Rainforests of West Africa: Ecology—Threats—Conservation; Birkhäuser Basel: Basel, Switzerland, 1991. [Google Scholar]
- Vågen, T.-G.; Shepherd, K.D.; Walsh, M.G.; Winowiecki, L.; Tamene Desta, L.; Tondoh, E.J. The Africa Soil Information Service (AfSIS) Technical Specifications: Soil Health Surveillance; CIAT: Nairobi, Kenya, 2010. [Google Scholar]
- Asubonteng, K.; Pfeffer, K.; Ros-Tonen, M.; Verbesselt, J.; Baud, I. Effects of Tree-crop Farming on Land-cover Transitions in a Mosaic Landscape in the Eastern Region of Ghana. Environ. Manag. 2018, 62, 529–547. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Ross, K.C.; Clark, L.D.; Padgett, T.C.; Renckly, T.R. Air University Sampling and Surveying Handbook: Guidelines for Planning, Organizing, and Conducting Surveys; Padgett, T.C., Renckly, T.R., Eds.; University Press of the Pacific: Honolulu, HI, USA, 2006. [Google Scholar]
- Liaw, A.; Wiener, M. Classification and Regression by random Forest. R News 2007, 2, 18–22. [Google Scholar]
- Congalton, R.G.; Green, K. Assessing the Accuracy of Remotely Sensed Data; CRC Press: Boca Raton, FL, USA, 2019. [Google Scholar]
- van Oort, P.A.J. Interpreting the change detection error matrix. Remote Sens. Environ. 2007, 108, 1–8. [Google Scholar] [CrossRef]
- Macleod, R.D.; Congalton, R.G. A quantitative comparison of change detection algorithms for monitoring eelgrass from remotely sensed data. Photogramm. Eng. Remote Sens. 1998, 64, 207–2016. [Google Scholar]
- Mas, J.-F. Monitoring land-cover changes: A comparison of change detection techniques. Int. J. Remote Sens. 1999, 20, 139–152. [Google Scholar] [CrossRef]
- Puyravaud, J.-P. Standardizing the calculation of the annual rate of deforestation. For. Ecol. Manag. 2003, 177, 593–596. [Google Scholar] [CrossRef]
- Lesschen, J.P.; Verburg, P.H.; Staal, S.J. Statistical Methods for Analysing the Spatial Dimension of Changes in Land Use and Farming Systems; LUCC Focus 3 Office: Nairobi, Kenya; ILRI: Wageningen, The Netherlands, 2005. [Google Scholar]
- Leeper, T.J. Interpreting Regression Results Using Average Marginal Effects with R’s Margins; R Foundation for Statistical Computing: Vienna, Austria, 2018. [Google Scholar]
- Barnier, J.; Briatte, F.; Larmarange, J. Questionr: Functions to Make Surveys Processing Easier. R Package Version 0.6.1. Available online: http://cran.r-project.org/package=questionr (accessed on 15 December 2020).
- R Core Team. R: A Language and Environment for Statistical Computing; R Foundation for Statistical Computing: Vienna, Austria, 2019. [Google Scholar]
- Mellor, A.; Haywood, A.; Stone, C.; Jones, S. The Performance of Random Forests in an Operational Setting for Large Area Sclerophyll Forest Classification. Remote Sens. 2013, 5, 2838–2856. [Google Scholar] [CrossRef] [Green Version]
- Rodriguez-Galiano, V.F.; Ghimire, B.; Rogan, J.; Chica-Olmo, M.; Rigol-Sanchez, J.P. An assessment of the effectiveness of a random forest classifier for land-cover classification. ISPRS J. Photogramm. Remote Sens. 2012, 67, 93–104. [Google Scholar] [CrossRef]
- Landis, J.R.; Koch, G.G. The Measurement of Observer Agreement for Categorical Data. Biometrics 1977, 33, 159–174. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Girard, M.-C.; Girard, C. Traitement des Données de Télédétection, 2nd ed.; Dunod: Paris, France, 1999. [Google Scholar]
- Sokeng, V.J.; Akpa, Y.L.; Assoma, T.; Kouame, F.; Corgne, S.; Rudant, J.-P.; Ouattara, T.; Sorho, F.; Yao, N.; Kouame, P. Suivi par télédétection des affectations des terres pour la promotion d’une agriculture intégrée au développement forestier en Côte d’Ivoire. In Proceedings of the Conférence OSFACO: Des Images Satellites Pour la Gestion Durable des Territoires en Afrique, Cotonou, Benin, 13–15 March 2019; pp. 1–17. [Google Scholar]
- Foody, G.M. Status of land cover classification accuracy assessment. Remote Sens. Environ. 2002, 80, 185–201. [Google Scholar] [CrossRef]
- Malan, B.B. Volatility and stabilization of the price of coffee and cocoa in Côte d’Ivoire. Agric. Econ. 2013, 59, 333–340. [Google Scholar]
- UNEP. Côte d’Ivoire: Post-Conflict Environmental Assessment; United Nations Environment Programme: Nairobi, Kenya, 2015. [Google Scholar]
- Koné, I. Wildlife in Jeopardy Inside and Outside Protected Areas in Côte d’Ivoire: The Combined Effects of Disorganization, Lack of Awareness, and Institutional Weakness. In Conservation Biology: Voices from the Tropics; Sodhi, N.S., Gibson, L., Raven, P.H., Eds.; John Wiley & Sons: Hoboken, NJ, USA, 2013; pp. 26–32. [Google Scholar]
- Akindès, F. Les contradictions des politiques d’aménagement des forêts classées en Côte-d’Ivoire. In Le Modèle Ivoirien en Questions: Crises, Ajustements, Recompositions; Contamin, B., Memel-Fotê, H., Eds.; KARTHALA & ORSTOM: Abidjan, Cote d’Ivoire, 1997; pp. 293–310. [Google Scholar]
- Amani, Y.C. Logiques des infiltrations paysannes dans les forêts classées en Côte d’Ivoire. Eur. J. Sci. Res. 2011, 66, 143–152. [Google Scholar]
- Andrieu, J.; Barima, Y.S.S.; Moreno, D.; Vignal, M.; Zerbo, R. Modélisation rétrospective du défrichement de la forêt classée du Haut-Sassandra (Côte d’Ivoire) dans un contexte de conflits armés (2001–2013). Espac. Géographique 2018, 47, 219. [Google Scholar] [CrossRef]
- Sangne, C.Y.; Barima, Y.S.S.; Bamba, I.; N’Doumé, C.-T.A. Dynamique forestière post-conflits armés de la Forêt classée du Haut-Sassandra (Côte d’Ivoire). VertigO 2015, 15, 1–18. [Google Scholar] [CrossRef]
- Ousmane, S.; Dibi, N.H.; Kouassi, K.H.; Kouassi, K.É.; Ouattara, K. Crises politico-militaires et dynamique de la végétation du Parc national du Mont Péko en Côte d’Ivoire. Bois Forêts des Trop. 2020, 343, 27–37. [Google Scholar] [CrossRef]
- Bamba, I.; Barima, Y.S.S.; Sangne, Y.C.; Andrieu, J.; Assi-Kaudjhis, J.P. Partition du territoire et dynamique des végétations pendant la période de conflit en Côte d’Ivoire. Tropicultura 2018, 36, 141–154. [Google Scholar] [CrossRef]
- Schroth, G.; Harvey, C.A. Biodiversity conservation in cocoa production landscapes: An overview. Biodivers. Conserv. 2007, 16, 2237–2244. [Google Scholar] [CrossRef]
- Ruf, F.O.; Schroth, G.; Doffangui, K. Climate change, cocoa migrations and deforestation in West Africa: What does the past tell us about the future? Sustain. Sci. 2015, 10, 101–111. [Google Scholar] [CrossRef]
- Kassin, K.E.; Doffangui, K.; Kouamé, B.; Yoro, R.G.; Assa, A. Variabilité pluviométrique et perspectives pour la replantation cacaoyère dans le Centre Ouest de la Côte d’Ivoire. J. Appl. Biosci. 2008, 12, 633–641. [Google Scholar]
- Andres, C.; Comoé, H.; Beerli, A.; Schneider, M.; Rist, S.; Jacobi, J. Cocoa in Monoculture and Dynamic Agroforestry. In Sustainable Agriculture Reviews; Lichtfouse, E., Ed.; Springer International Publishing: Berlin/Heidelberg, Germany, 2016; Volume 19, pp. 121–153. [Google Scholar] [CrossRef]
- Kanohin, F.O.; Saley, M.B.; Aké, G.E.; Savané, I. Variabilité climatique et productions de café et cacao en zone tropicale humide: Cas de la région de Daoukro (Centre-est de la Côte d’Ivoire). Int. J. Innov. Appl. Stud. 2012, 1, 194–215. [Google Scholar]
- Lambin, E.F.; Geist, H.J.; Lepers, E. Dynamics of Land-use and land-cover change in tropical regions. Annu. Rev. Environ. Resour. 2003, 28, 205–241. [Google Scholar] [CrossRef] [Green Version]
- Liu, X.; Huang, Y.; Xu, X.; Li, X.; Li, X.; Ciais, P.; Lin, P.; Gong, K.; Ziegler, A.D.; Chen, A.; et al. High-spatiotemporal-resolution mapping of global urban change from 1985 to 2015. Nat. Sustain. 2020. [Google Scholar] [CrossRef]
- Baker, C.; Lawrence, R.L.; Montagne, C.; Patten, D.T. Change detection of wetland ecosystems using Landsat imagery and change vector analysis. Wetlands 2007, 27, 610–619. [Google Scholar] [CrossRef]
- Varlet, F. Étude des Terroirs et Couloirs Écologiques Entre le Parc National de Taï et le Parc National de Grebo; Wild Chimpanzee Foundation: Abidjan, Côte d’Ivoire, 2013. [Google Scholar]
- Ongolo, S.; Kouassi, K.S.; Chérif, S.; Giessen, L. The Tragedy of Forestland Sustainability in Postcolonial Africa: Land Development, Cocoa, and Politics in Côte d’Ivoire. Sustainability 2018, 10, 4611. [Google Scholar] [CrossRef] [Green Version]
- Acheampong, E.O.; Macgregor, C.J.; Sloan, S.; Sayer, J. Deforestation is driven by agricultural expansion in Ghana’s forest reserves. Sci. Afr. 2019, 5, e00146. [Google Scholar] [CrossRef]
- Chakravarty, S.; Ghosh, S.K.; Suresh, C.P.; Dey, A.N.; Shukla, G. Deforestation: Causes, Effects and Control Strategies. In Global Perspectives on Sustainable Forest Management; Clement, A.O., Ed.; IntechOpen: London, UK, 2012; pp. 3–28. [Google Scholar]
- Dimobe, K.; Ouédraogo, A.; Soma, S.; Goetze, D.; Porembski, S.; Thiombiano, A. Identification of driving factors of land degradation and deforestation in the Wildlife Reserve of Bontioli (Burkina Faso, West Africa). Glob. Ecol. Conserv. 2015, 4, 559–571. [Google Scholar] [CrossRef] [Green Version]
- Kissinger, G.; Herold, M.; De Sy, V. Drivers of Deforestation and Forest Degradation: A Synthesis Report for REDD+ Policymakers; Lexeme Consulting: Vancouver, BC, Canada, 2012. [Google Scholar]
- Shvidenko, A. Deforestation. In Encyclopedia of Ecology; Jorgensen, S.E., Fath, B., Eds.; Elsevier: Amsterdam, The Netherlands, 2008; pp. 853–859. [Google Scholar] [CrossRef]
- Tegegne, Y.T.; Lindner, M.; Fobissie, K.; Kanninen, M. Evolution of drivers of deforestation and forest degradation in the Congo Basin forests: Exploring possible policy options to address forest loss. Land Use Policy 2016, 51, 312–324. [Google Scholar] [CrossRef]
- Fasona, M.; Adeonipekun, P.A.; Agboola, O.; Akintuyi, A.; Bello, A.; Ogundipe, O.; Soneye, A.; Omojola, A. Drivers of Deforestation and Land-Use Change in Southwest Nigeria. In Handbook of Climate Change Resilience; Leal Filho, W., Ed.; Springer International Publishing: Cham, Switzerland, 2018; pp. 1–24. [Google Scholar] [CrossRef]
- Ehuitché, B.T. An analysis of dynamics of deforestation and agricultural productivity in Côte d’Ivoire. Int. Res. J. Agric. Sci. Soil Sci. 2015, 5, 103–111. [Google Scholar] [CrossRef]
- Ehuitché, B.T. An analysis of dynamics of deforestation and agricultural productivity in Côte d’Ivoire. In Promoting Green Economy: Implications for Natural Resources Development, Food Security and Poverty Reduction in Africa; Ayuk, E.T., Oku, E.E., Asubonteng, K.O., Nutakor, P., Eds.; United Nations University Institute for Natural Resources: Accra, Ghana, 2016; pp. 59–76. [Google Scholar] [CrossRef]
- Mbow, C.; Brandt, M.; Ouedraogo, I.; de Leeuw, J.; Marshall, M. What Four Decades of Earth Observation Tell Us about Land Degradation in the Sahel? Remote Sens. 2015, 7, 4048–4067. [Google Scholar] [CrossRef] [Green Version]
- Stocking, M.A.; Murnaghan, N. A Handbook for the Field Assessment of Land Degradation; Stocking, M.A., Murnaghan, N., Eds.; Routledge: London, UK, 2001. [Google Scholar]
- Mulinge, W.; Gicheru, P.; Murithi, F.; Maingi, P.; Kihiu, E.; Kirui, O.K.; Mirzabaev, A. Economics of Land Degradation and Improvement in Kenya. In Economics of Land Degradation and Improvement—A Global Assessment for Sustainable Development; Springer International Publishing: Cham, Switzerland, 2016; pp. 471–498. [Google Scholar] [CrossRef] [Green Version]
- Nogherotto, R.; Coppola, E.; Giorgi, F.; Mariotti, L. Impact of Congo Basin deforestation on the African monsoon. Atmos. Sci. Lett. 2013, 14, 45–51. [Google Scholar] [CrossRef]
- Schroth, G.; Läderach, P.; Martinez-Valle, A.I.; Bunn, C.; Jassogne, L. Vulnerability to climate change of cocoa in West Africa: Patterns, opportunities and limits to adaptation. Sci. Total Environ. 2016, 556, 231–241. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Brou, Y.T. Impacts des modifications bioclimatiques et de l’amenuisement des terres forestières dans les paysanneries ivoiriennes: Quelles solutions pour une agriculture durable en Côte d’Ivoire. Cuad. Geogr. 2009, 45, 13–29. [Google Scholar]
- Chauveau, J.-P. The Land Tenure Question in Côte d’Ivoire: A Lesson in History; International Institute for Environment and Development: London, UK, 2000. [Google Scholar]
- Wyman, M.S.; Stein, T.V. Modeling social and land-use/land-cover change data to assess drivers of smallholder deforestation in Belize. Appl. Geogr. 2010, 30, 329–342. [Google Scholar] [CrossRef]
- Gyau, A.; Smoot, K.; Kouame, C.; Diby, L.; Kahia, J.; Ofori, D. Farmer attitudes and intentions towards trees in cocoa (Theobroma cacao L.) farms in Côte d’Ivoire. Agrofor. Syst. 2014, 88, 1035–1045. [Google Scholar] [CrossRef]
- Abdulai, I.; Hoffmann, M.P.; Jassogne, L.; Asare, R.; Graefe, S.; Tao, H.-H.; Muilerman, S.; Vaast, P.; Van Asten, P.; Läderach, P.; et al. Variations in yield gaps of smallholder cocoa systems and the main determining factors along a climate gradient in Ghana. Agric. Syst. 2020, 181, 102812. [Google Scholar] [CrossRef]
- Besseau, P.; Graham, S.; Christophersen, T. Restoring Forests and Landscapes: The Key to a Sustainable Future; Besseau, P., Graham, S., Christophersen, T., Eds.; Global Partnership on Forest and Landscape Restoration: Vienna, Austria, 2018. [Google Scholar]
- Gann, G.D.; McDonald, T.; Walder, B.; Aronson, J.; Nelson, C.R.; Jonson, J.; Hallett, J.G.; Eisenberg, C.; Guariguata, M.R.; Liu, J.; et al. International principles and standards for the practice of ecological restoration. Second edition Restor. Ecol. 2019, 27. [Google Scholar] [CrossRef] [Green Version]
- Crouzeilles, R.; Beyer, H.L.; Monteiro, L.M.; Feltran-Barbieri, R.; Pessôa, A.C.M.; Barros, F.S.M.; Lindenmayer, D.B.; Lino, E.D.S.M.; Grelle, C.E.V.; Chazdon, R.L.; et al. Achieving cost-effective landscape-scale forest restoration through targeted natural regeneration. Conserv. Lett. 2020, e12709. [Google Scholar] [CrossRef]
- N’Goran, P.K.; Boesch, C.; Mundry, R.; N’Goran, E.K.; Herbinger, I.; Yapi, F.A.; Kühl, H.S. Hunting, Law Enforcement, and African Primate Conservation. Conserv. Biol. 2012, 26, 565–571. [Google Scholar] [CrossRef] [PubMed]
- Kesse, M.M. Recognizing local rights: New approaches—Co-management: A participatory approach to Sustainable forests in Cote d’Ivoire. In The Dynamics of Resource Tenure in West Africa; Toulmin, C., Delville, P.L., Traore, S., Eds.; International Institute for Environment and Development: Oxford, UK, 2002; pp. 121–130. [Google Scholar]
LULC Code | LULC Type | Definitions/Description |
---|---|---|
1 | Dense forests | All naturally growing lands in which the trees crowd together to form a thick and permanently leafy canopy throughout the year and with a density exceeding 60%. |
2 | Degraded forests | Forestland with crown cover between 15 and 60%. Their low crown-cover canopy is a sign of degradation resulting from planned or unplanned logging, mining and agricultural activities. |
3 | Rubber plantations | All cultivated pure rubber areas in the landscape comprised of both young and mature rubber. |
4 | Other cash crops | Includes all other tree-crop plantations of different tree densities and age categories in the landscape, mainly cocoa, coffee and oil palm. This class also contains sparse woodlands. |
5 | Food crops–fallows | Land primarily used for the production of food, mainly annual or biannual crops and juvenile cash crop plantations. It also includes natural vegetation areas that oscillate between production and fallow periods in a food production cycle. The latter are predominantly grass, bush and shrubs. |
6 | Waterbodies | All forms of exposed water surfaces including rivers, lakes, streams, rivers, ponds, etc. |
7 | Settlements | Non-vegetated parts of the landscape including areas with high and low intensities of infrastructural development and exposed soil surfaces with little or no capacity to support plant life. This class includes roads (tarred and untarred), towns, wastelands, mined-out areas, rock outcrops, etc. |
8 | Wetlands | Areas where the land surface is moist for most of the year (swampy land). This class also includes heterogeneous mixtures of vegetation, grasses, rainfed rice land, etc. |
LULC Type | Year | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | Class Error |
---|---|---|---|---|---|---|---|---|---|---|
1 Dense forests | 1987 | 66,432 | 353 | 0 | 30 | 24 | 6 | 0 | 0 | 0.0062 |
2015 | 40,593 | 16 | 7 | 123 | 35 | 0 | 0 | 0 | 0.0044 | |
2 Degraded forests | 1987 | 672 | 2360 | 1 | 940 | 0 | 0 | 0 | 0 | 0.4060 |
2015 | 26 | 833 | 3 | 72 | 2 | 0 | 0 | 0 | 0.1100 | |
3 Rubber plantations | 1987 | 0 | 4 | 946 | 42 | 0 | 0 | 5 | 0 | 0.0512 |
2015 | 5 | 1 | 2191 | 68 | 18 | 0 | 0 | 0 | 0.0403 | |
4 Other cash crops | 1987 | 44 | 872 | 20 | 11,347 | 224 | 0 | 9 | 0 | 0.0934 |
2015 | 151 | 71 | 54 | 4528 | 354 | 0 | 1 | 26 | 0.1267 | |
5 Food crops—fallows | 1987 | 34 | 1 | 0 | 273 | 2552 | 0 | 84 | 1 | 0.1334 |
2015 | 40 | 10 | 8 | 269 | 6129 | 0 | 47 | 56 | 0.0656 | |
6 Waterbodies | 1987 | 49 | 1 | 0 | 0 | 0 | 58,174 | 0 | 3 | 0.0009 |
2015 | 1 | 0 | 0 | 0 | 0 | 18,855 | 0 | 0 | 0.0001 | |
7 Settlements | 1987 | 0 | 0 | 5 | 10 | 112 | 0 | 4314 | 1 | 0.0288 |
2015 | 0 | 0 | 0 | 1 | 51 | 0 | 11,399 | 25 | 0.0067 | |
8 Wetlands | 1987 | 0 | 0 | 0 | 0 | 9 | 5 | 3 | 42 | 0.2881 |
2015 | 11 | 0 | 12 | 55 | 105 | 0 | 34 | 988 | 0.1801 | |
1987—Overall accuracy = 97.37% Kappa coefficient = 0.95 OOB error = 2.50% 2015—Overall accuracy = 94.53% Kappa coefficient = 0.92 OOB error = 2.63% |
LULC Type | 1987 | 2015 | Net Change | Annual Rate (%) | |||
---|---|---|---|---|---|---|---|
Area (km2) | % | Area (km2) | % | km2 | km2/year | ||
Dense forests | 6252.14 | 58.15 | 4180.58 | 38.88 | −2071.56 | −73.98 | −1.44 |
Degraded forests | 713.59 | 6.64 | 280.65 | 2.61 | −432.94 | −15.46 | −3.33 |
Rubber plantations | 26.22 | 0.24 | 185.21 | 1.72 | 158.99 | 5.68 | 6.98 |
Other cash crops | 2080.37 | 19.35 | 2419.13 | 22.50 | 338.76 | 12.10 | 0.54 |
Food crops—fallows | 1134.36 | 10.55 | 2928.31 | 27.24 | 1793.95 | 64.07 | 3.39 |
Waterbodies | 517.15 | 4.81 | 495.06 | 4.60 | −22.09 | −0.79 | −0.16 |
Settlements | 25.39 | 0.24 | 183.11 | 1.70 | 157.71 | 5.63 | 7.06 |
Wetlands | 1.99 | 0.02 | 79.18 | 0.74 | 77.19 | 2.76 | 13.16 |
LULC Type | Area (km2) | ||||||||
---|---|---|---|---|---|---|---|---|---|
1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | Total (1987) | |
1 Dense forests | 4125.35 (65.98) | 231.48 (3.7) | 59.9 (0.96) | 808.25 (12.93) | 961.64 (15.38) | 5.25 (0.08) | 24.5 (0.39) | 35.77 (0.57) | 6252.14 (100) |
2 Degraded forests | 19.86 (2.78) | 20.66 (2.9) | 19.25 (2.7) | 283.04 (39.66) | 323.36 (45.31) | 8.03 (1.13) | 20.67 (2.9) | 18.72 (2.62) | 713.59 (100) |
3 Rubber plantations | 0.01 (0.04) | 0.2 (0.77) | 22.27 (84.91) | 3.32 (12.68) | 0.27 (1.04) | 0 (0) | 0.14 (0.54) | 0.01 (0.02) | 26.22 (100) |
4 Other cash crops | 18.43 (0.89) | 19.09 (0.92) | 65.83 (3.16) | 816.14 (39.23) | 1067.98 (51.34) | 6.46 (0.31) | 64.73 (3.11) | 21.71 (1.04) | 2080.37 (100) |
5 Food crops—fallows | 9.99 (0.88) | 9 (0.79) | 17 (1.5) | 504.4 (44.47) | 535.12 (47.17) | 4.22 (0.37) | 51.75 (4.56) | 2.88 (0.25) | 1134.36 (100) |
6 Waterbodies | 6.84 (1.32) | 0.2 (0.04) | 0.44 (0.09) | 2.67 (0.52) | 34.58 (6.69) | 470.92 (91.06) | 1.46 (0.28) | 0.03 (0.01) | 517.15 (100) |
7 Settlements | 0.05 (0.18) | 0.01 (0.03) | 0.5 (1.98) | 0.95 (3.74) | 4.08 (16.05) | 0.13 (0.53) | 19.63 (77.33) | 0.04 (0.16) | 25.39 (100) |
8 Wetlands | 0.05 (2.62) | 0 (0) | 0.01 (0.59) | 0.37 (18.43) | 1.29 (64.72) | 0.04 (2.14) | 0.22 (10.86) | 0.01 (0.63) | 1.99 (100) |
Total (2015) | 4180.58 (38.88) | 280.65 (2.61) | 185.21 (1.72) | 2419.13 (22.5) | 2928.31 (27.24) | 495.06 (4.6) | 183.11 (1.7) | 79.18 (0.74) | 10,751.22 (100) |
Household Attribute | Value |
---|---|
Mean household age (years) | 43.5 |
Gender (male, %) | 82.2 |
Head of the family (male, %) | 74.21 |
Marital status (married, %) | 86.86 |
Education status (literate, %) | 75 |
Education length (duration, year) | 2.55 |
Migration status (foreign migrant, %) | 50.12 |
Duration of residence (years) | 22.06 |
Occupation (farmer, %) | 100 |
Cocoa-farming (%) | 75.18 |
Mean household size (no.) | 7.92 |
Mean female size in the household (no.) | 3.89 |
Mean income (>500k XOF a/year, %) | 56.93 |
Sources of income (farming, %) | 90 |
Mean cocoa farm size (hectares) | 5.19 |
Explanatory Variables | Model Summary | Marginal Effects | ||||
---|---|---|---|---|---|---|
Estimate | Std Error | p-Value | AME | Std Error | p-Value | |
Constant | 0.738 | 0.910 | 0.738 | |||
Age of respondent | 1.038 | 0.020 | 0.062 | 0.003 | 0.002 | 0.062 |
Origin (1-Foreigner) | 1.851 | 0.415 | 0.137 | 0.051 | 0.035 | 0.145 |
Origin (2-Native) | 1.14 × 107 | 989.37 | 0.987 | 0.144 *** | 0.029 | 0.000 |
Household head education (1-Primary) | 2.07 | 0.536 | 0.175 | 0.059 | 0.038 | 0.123 |
Household head education (2-Secondary) | 29.592 ** | 1.196 | 0.005 | 0.139 *** | 0.024 | 0.000 |
Household head education (3-University) | 3.117 | 1.317 | 0.388 | 0.082 | 0.069 | 0.234 |
Agricultural income (1-No income) | 0.084 ** | 0.830 | 0.003 | −0.284 * | 0.119 | 0.017 |
Agricultural income (2- <XOF 500,000) | 0.628 | 0.521 | 0.372 | −0.032 | 0.035 | 0.364 |
Agricultural income (3- Do not know) | 1.08 × 107 | 1517.59 | 0.991 | 0.07 ** | 0.024 | 0.004 |
Agricultural income (4- >XOF 1,000,000) | 0.432 | 0.542 | 0.122 | −0.065 | 0.042 | 0.123 |
Cultivated food crops | 0.921 | 0.046 | 0.076 | −0.006 | 0.004 | 0.074 |
Residence time | 1.076 *** | 0.021 | 0.000 | 0.006 *** | 0.002 | 0.000 |
Pseudo R2 (Nagelkerke) | 0.3 | |||||
Prob > Chi2 | 0.000 |
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Kouassi, J.-L.; Gyau, A.; Diby, L.; Bene, Y.; Kouamé, C. Assessing Land Use and Land Cover Change and Farmers’ Perceptions of Deforestation and Land Degradation in South-West Côte d’Ivoire, West Africa. Land 2021, 10, 429. https://doi.org/10.3390/land10040429
Kouassi J-L, Gyau A, Diby L, Bene Y, Kouamé C. Assessing Land Use and Land Cover Change and Farmers’ Perceptions of Deforestation and Land Degradation in South-West Côte d’Ivoire, West Africa. Land. 2021; 10(4):429. https://doi.org/10.3390/land10040429
Chicago/Turabian StyleKouassi, Jean-Luc, Amos Gyau, Lucien Diby, Yeboi Bene, and Christophe Kouamé. 2021. "Assessing Land Use and Land Cover Change and Farmers’ Perceptions of Deforestation and Land Degradation in South-West Côte d’Ivoire, West Africa" Land 10, no. 4: 429. https://doi.org/10.3390/land10040429
APA StyleKouassi, J. -L., Gyau, A., Diby, L., Bene, Y., & Kouamé, C. (2021). Assessing Land Use and Land Cover Change and Farmers’ Perceptions of Deforestation and Land Degradation in South-West Côte d’Ivoire, West Africa. Land, 10(4), 429. https://doi.org/10.3390/land10040429