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Detecting deforestation with a spectral change detection approach using multitemporal Landsat data: A case study of Kinabalu Park, Sabah, Malaysia

机译:使用多时态Landsat数据通过光谱变化检测方法检测森林砍伐:以马来西亚沙巴的Kinabalu公园为例

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Tropical deforestation is occurring at an alarming rate, threatening the ecological integrity of protected areas. This makes it vital to regularly assess protected areas to confirm the efficacy of measures that protect that area from clearing. Satellite remote sensing offers a systematic and objective means for detecting and monitoring deforestation. This paper examines a spectral change approach to detect deforestation using pattern decomposition (PD) coefficients from multitemporal Landsat data. Our results show that the PD coefficients for soil and vegetation can be used to detect deforestation using change vector analysis (CVA). CVA analysis demonstrates that deforestation in the Kinabalu area, Sabah, Malaysia has significantly slowed from 1.2% in period 1 (1973 and 1991) to 0.1% in period 2 (1991 and 1996). A comparison of deforestation both inside and outside Kinabalu Park has highlighted the effectiveness of the park in protecting the tropical forest against clearing. However, the park is still facing pressure from the area immediately surrounding the park (the 1 km buffer zone) where the deforestation rate has remained unchanged.
机译:热带滥伐森林的速度惊人,威胁到保护区的生态完整性。因此,定期评估保护区以确认保护该区域免于清理的措施的有效性至关重要。卫星遥感为检测和监测森林砍伐提供了系统和客观的手段。本文研究了一种频谱变化方法,该方法利用多时态Landsat数据中的模式分解(PD)系数来检测森林砍伐。我们的结果表明,土壤和植被的PD系数可用于使用变化矢量分析(CVA)来检测森林砍伐。 CVA分析表明,马来西亚沙巴的京那巴鲁地区的森林砍伐已从第1阶段(1973年和1991年)的1.2%显着降低到第2阶段(1991年和1996年)的0.1%。通过对比京那巴鲁公园内外的森林砍伐,可以看出该公园在保护热带森林免遭砍伐方面的有效性。但是,公园仍然面临着紧接公园周围区域(1公里缓冲区)的压力,在这里森林砍伐率保持不变。

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