2006Unpublished venueRequires access

Performance of Crop Coefficients Inferred from NDVI Observations for Estimating Evapotranspiration and Irrigation Scheduling of Wheat

Douglas J. Hunsaker, Paul J. Pinter, Thomas R. Clarke, Glenn J. Fitzgerald, Andrew N. French

Open publisher page 3 citations

Abstract

Time-based crop coefficients are often used to estimate daily crop evapotranspiration (ETc) for determining irrigation scheduling. Incorporating remote sensing observations to infer crop coefficients during the season could provide the spatial and temporal estimation of ETc that is needed for precise irrigation scheduling. Experiments conducted for two seasons with wheat investigated the use of reflectance-based and time-based basal crop coefficients (Kcb), integrated within the FAO-56 dual crop coefficient framework to compute the daily ETc for determining irrigation scheduling. The experiments consisted of two main treatments denoted as the normalized difference vegetation index (NDVI) and the FAO treatments. Six, replicated sub-treatments, equally embedded within the two main treatments, included three plant densities (typical, dense, and sparse) and two nitrogen levels (high and low). NDVI data obtained from frequent ground-based canopy reflectance measurements were used to calculate the Kcb for each NDVI plot via a previously defined relationship mat describes Kcb as a function of scaled NDVI. A single time-based Kcb curve, developed locally for standard crop conditions, was used to estimate the daily Kcb for the FAO treatment plots. Predicted Kcb compared favorably with derived Kcb determined from field measurements for both the NDVI and FAO methods for standard conditions (typical density and high N) during the first season. However, the time-based FAO Kcb curve failed to adequately describe derived Kcb for any sub-treatment condition during the second season when crop development was atypical due to a late crop emergence date, delayed nitrogen applications, and a shorter growing season. Because the NDVI Kcb closely tracked derived Kcb for all sub-treatments, ETc prediction for NDVI was superior to FAO, particularly during the second season. In either season, the differences between the NDVI and FAO treatments for grain yield and water use efficiency (yield/ETc) were not statistically significant. However, compared to the standard FAO Kcb curve, the NDVI-Kcb method resulted in a significant decrease in the irrigation water used.

About this research paper

What this paper is about

Time-based crop coefficients are often used to estimate daily crop evapotranspiration (ETc) for determining irrigation scheduling. Incorporating remote sensing observations to infer crop coefficients during the season could provide the spatial and temporal estimation of ETc that is needed for precise irrigation scheduling. Experiments conducted for two seasons with wheat investigated the use of reflectance-based and time-based basal crop coefficients (Kcb), integrated within the FAO-56 dual crop coefficient framework to compute the daily ETc for determining irrigation scheduling. The experiments consisted of two main treatments denoted as the normalized difference vegetation index (NDVI) and the FAO treatments. Six, replicated sub-treatments, equally embedded within the two main treatments, included three plant densities (typical, dense, and sparse) and two nitrogen levels (high and low). NDVI data obtained from frequent ground-based canopy reflectance measurements were used to calculate the Kcb for each NDVI plot via a previously defined relationship mat describes Kcb as a function of scaled NDVI. A single time-based Kcb curve, developed locally for standard crop conditions, was used to estimate the daily Kcb for the FAO treatment plots. Predicted Kcb compared favorably with derived Kcb determined from field measurements for both the NDVI and FAO methods for standard conditions (typical density and high N) during the first season. However, the time-based FAO Kcb curve failed to adequately describe derived Kcb for any sub-treatment condition during the second season when crop development was atypical due to a late crop emergence date, delayed nitrogen applications, and a shorter growing season. Because the NDVI Kcb closely tracked derived Kcb for all sub-treatments, ETc prediction for NDVI was superior to FAO, particularly during the second season. In either season, the differences between the NDVI and FAO treatments for grain yield and water use efficiency (yield/ETc) were not statistically significant. However, compared to the standard FAO Kcb curve, the NDVI-Kcb method resulted in a significant decrease in the irrigation water used.

Why it matters

OpenAlex reports 3 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Time-based crop coefficients are often used to estimate daily crop evapotranspiration (ETc) for determining irrigation scheduling. Incorporating remote sensing observations to infer crop coefficients during the season could provide the spatial and temporal estimation of ETc that is needed for precise irrigation scheduling. Experiments conducted for two seasons with wheat investigated the use of reflectance-based and time-based basal crop coefficients (Kcb), integrated within the FAO-56 dual crop coefficient framework to compute the daily ETc for determining irrigation scheduling. The experiments consisted of two main treatments denoted as the normalized difference vegetation index (NDVI) and the FAO treatments. Six, replicated sub-treatments, equally embedded within the two main treatments, included three plant densities (typical, dense, and sparse) and two nitrogen levels (high and low). NDVI data obtained from frequent ground-based canopy reflectance measurements were used to calculate the Kcb for each NDVI plot via a previously defined relationship mat describes Kcb as a function of scaled NDVI. A single time-based Kcb curve, developed locally for standard crop conditions, was used to estimate the daily Kcb for the FAO treatment plots. Predicted Kcb compared favorably with derived Kcb determined from field measurements for both the NDVI and FAO methods for standard conditions (typical density and high N) during the first season. However, the time-based FAO Kcb curve failed to adequately describe derived Kcb for any sub-treatment condition during the second season when crop development was atypical due to a late crop emergence date, delayed nitrogen applications, and a shorter growing season. Because the NDVI Kcb closely tracked derived Kcb for all sub-treatments, ETc prediction for NDVI was superior to FAO, particularly during the second season. In either season, the differences between the NDVI and FAO treatments for grain yield and water use efficiency (yield/ETc) were not statistically significant. However, compared to the standard FAO Kcb curve, the NDVI-Kcb method resulted in a significant decrease in the irrigation water used.

Key concepts: Crop coefficient, Normalized Difference Vegetation Index, Irrigation scheduling, Evapotranspiration, Irrigation, Growing season, Canopy, Environmental science

Related papers

Back to paper searchBrowse research topicsOriginal source
Performance of Crop Coefficients Inferred from NDVI Observations for Estimating Evapotranspiration and Irrigation Scheduling of Wheat — Research Paper | ScholarLens