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Assessing the Extent of Conservation Tillage In Agricultural Landscapes

机译:评估农业景观中的保护耕作程度

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Crop residue (or plant litter) on the soil surface can decrease soil erosion and runoff and improve soil quality. Quantification of crop residue cover is required to evaluate the effectiveness of conservation tillage practices as well as the extent of biofuel harvesting. Remote sensing techniques can provide reliable assessment od crop residue cover over large fields. With Landsat Thematic Mapper bands, crop residues can be brighter or darker than soils depending on soil type, crop type, moisture content, and residue age. With hyperspectral reflectance data, relatively narrow absorption features, centered near 2100 and 2300 nm, can be detected that are associated with cellulose and lignin concentrations. These features are evident in reflectance spectra of crop residues, but not in reflectance spectra of soils. Our objectives were to: estimate crop residue cover using remotely sensed data over an agricultural site in central Iowa, and evaluate alternative, less labor-intensive sampling schemes for acquiring crop residue cover surface reference data. We acquired EO-1 Hyperion imaging spectrometer data over agricultural fields in central Iowa shortly after planting in May 2004 and 2005. Crop residue cover was also measured in corn and soybean fields using line-point transects. The cellulose absorption index (CAI), which measured the relative intensity of the absorption feature near 2100 nm, was calculated using three relatively narrow bands centered at 2030, 2100, and 2210 nm. Results showed that crop residue cover was linearly related to CAI. Changes in the slopes of the regression line from year to year were related to scene moisture conditions. Tillage intensity classes corresponding to conventional tillage (≤ 30% cover) and conservation tillage (> 30% cover) were correctly identified in 75-82% of the fields. In addition, by combining information from previous season's crop classification with crop residue cover after planting, an inventory of soil tillage intensity by previous crop was generated for the whole Hyperion scene for each year. Inventories and maps of tillage intensity are required for field- and watershed scale models to evaluate management practices that maximize production and minimize environmental impact.
机译:土壤表面上的作物残留物(或植物垃圾)可以降低土壤侵蚀和径流,提高土壤质量。需要量化作物残留盖需要评估保护耕作实践的有效性以及生物燃料收获的程度。遥感技术可以在大型领域提供可靠的评估OD作物残留盖。对于Landsat主题映射器带,根据土壤类型,作物类型,水分含量和残留时代,作物残留物比土壤更亮或较暗。利用高光谱反射数据,可以检测与纤维素和木质素浓度相关的相对窄的吸收特征,以近2100和2300nm为中心。这些特征在作物残留物的反射光谱中是明显的,但不在土壤的反射光谱中。我们的目标是:估计作物残留覆盖在伊瓦河中部的农业部位,评估替代,少量劳动密集型采样方案,用于获取作物残留覆盖表面参考数据。我们在2004年5月在种植后不久,在伊瓦河中部的农业领域获得了EO-1 Hyperion成像光谱仪数据。使用线点横断面在玉米和大豆场中也测量了作物残留盖。使用在2030,2100和2210nm中心的三个相对窄的带,计算测量吸收特征近2100nm附近的吸收特征的相对强度的纤维素吸收指数(CAI)。结果表明,作物残留盖与CAI线性相关。年度到年份回归线斜率的变化与场景湿度条件相关。对应于常规耕作(≤30%覆盖)和保护耕作(> 30%覆盖)的耕作强度等级在75-82%的田地中正确鉴定出来。此外,通过将前季节作物分类的信息与作物残留盖组合在种植后,每年为整个Hyperion场景产生之前作物的土壤耕作强度库存。现场和流域规模模型需要库存和耕种强度的地图,以评估生产的管理实践,并最大限度地减少对环境影响。

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