Mapping hailstorm damaged crop area using multispectral satellite data
Hailstorms cause enormous physical damage in agriculture, often result in disasters leading to widespread, sudden loss in harvestable produce, and at times entire loss to grownup orchards. Accurate area-wide crop damage assessment is a challenging task to provide timely relief to farmers. This study...
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Published in: | The Egyptian journal of remote sensing and space sciences Vol. 22; no. 1; pp. 73 - 79 |
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Abstract | Hailstorms cause enormous physical damage in agriculture, often result in disasters leading to widespread, sudden loss in harvestable produce, and at times entire loss to grownup orchards. Accurate area-wide crop damage assessment is a challenging task to provide timely relief to farmers. This study demonstrates the feasibility of using multispectral satellite data for mapping crop-damaged area, identification of hailstreaks, their ground track attributes using NDVI difference of pre and post-hailstorm events. Crop classification within hailstreak was performed using a multispectral, high resolution LISS-IV satellite data from IRS-Resourcesat-2. Six hailstorm-damaged streaks were examined in the study area, varying in width ranging from 3 to 8 km, and length ranging from 6 to 33 km. Maximum area damaged was in grapes, followed by sugarcane and papaya. Changes in NDVI profile of different crops in the study area was recorded, and a model was developed for estimating changes in NDVI due to hail damage. The crop classification error matrix indicated Kappa Coefficient (0.55) with an overall classification accuracy of 69.6%. This study discusses the potential of high spectral, spatial and temporal resolution remote sensing data for crop damage assessment in the aftermath of the hailstorms. |
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AbstractList | Hailstorms cause enormous physical damage in agriculture, often result in disasters leading to widespread, sudden loss in harvestable produce, and at times entire loss to grownup orchards. Accurate area-wide crop damage assessment is a challenging task to provide timely relief to farmers. This study demonstrates the feasibility of using multispectral satellite data for mapping crop-damaged area, identification of hailstreaks, their ground track attributes using NDVI difference of pre and post-hailstorm events. Crop classification within hailstreak was performed using a multispectral, high resolution LISS-IV satellite data from IRS-Resourcesat-2. Six hailstorm-damaged streaks were examined in the study area, varying in width ranging from 3 to 8 km, and length ranging from 6 to 33 km. Maximum area damaged was in grapes, followed by sugarcane and papaya. Changes in NDVI profile of different crops in the study area was recorded, and a model was developed for estimating changes in NDVI due to hail damage. The crop classification error matrix indicated Kappa Coefficient (0.55) with an overall classification accuracy of 69.6%. This study discusses the potential of high spectral, spatial and temporal resolution remote sensing data for crop damage assessment in the aftermath of the hailstorms. Keywords: Hailstorm, Crop damage assessment, Remote sensing Hailstorms cause enormous physical damage in agriculture, often result in disasters leading to widespread, sudden loss in harvestable produce, and at times entire loss to grownup orchards. Accurate area-wide crop damage assessment is a challenging task to provide timely relief to farmers. This study demonstrates the feasibility of using multispectral satellite data for mapping crop-damaged area, identification of hailstreaks, their ground track attributes using NDVI difference of pre and post-hailstorm events. Crop classification within hailstreak was performed using a multispectral, high resolution LISS-IV satellite data from IRS-Resourcesat-2. Six hailstorm-damaged streaks were examined in the study area, varying in width ranging from 3 to 8 km, and length ranging from 6 to 33 km. Maximum area damaged was in grapes, followed by sugarcane and papaya. Changes in NDVI profile of different crops in the study area was recorded, and a model was developed for estimating changes in NDVI due to hail damage. The crop classification error matrix indicated Kappa Coefficient (0.55) with an overall classification accuracy of 69.6%. This study discusses the potential of high spectral, spatial and temporal resolution remote sensing data for crop damage assessment in the aftermath of the hailstorms. |
Author | Rao, Ch. Srinivasa Prabhakar, Mathyam Gopinath, K.A. Reddy, A.G.K. Thirupathi, M. |
Author_xml | – sequence: 1 givenname: Mathyam surname: Prabhakar fullname: Prabhakar, Mathyam email: prab249@gmail.com organization: ICAR-Central Research Institute for Dryland Agriculture, Hyderabad, India-500059 – sequence: 2 givenname: K.A. surname: Gopinath fullname: Gopinath, K.A. organization: ICAR-Central Research Institute for Dryland Agriculture, Hyderabad, India-500059 – sequence: 3 givenname: A.G.K. surname: Reddy fullname: Reddy, A.G.K. organization: ICAR-Central Research Institute for Dryland Agriculture, Hyderabad, India-500059 – sequence: 4 givenname: M. surname: Thirupathi fullname: Thirupathi, M. organization: ICAR-Central Research Institute for Dryland Agriculture, Hyderabad, India-500059 – sequence: 5 givenname: Ch. Srinivasa surname: Rao fullname: Rao, Ch. Srinivasa organization: ICAR-National Academy of Agricultural Research Management, Hyderabad, India-500030 |
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Cites_doi | 10.1175/1520-0450(1985)024<0003:CHDITM>2.0.CO;2 10.1175/WAF923.1 10.1175/1520-0477-83.3.363 10.1016/S0034-4257(00)00169-3 10.54302/mausam.v67i1.1230 10.18520/cs/v112/i10/2095-2100 10.5558/tfc66463-5 10.1142/S0578563407001617 10.1175/1520-0434(2002)017<0382:AOTDTF>2.0.CO;2 10.1016/0034-4257(88)90019-3 10.1175/MWR2914.1 10.1175/1520-0450(1971)010<0086:QOCHLB>2.0.CO;2 10.1017/CBO9781139177245.006 |
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Keywords | Hailstorm Remote sensing Crop damage assessment |
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