Remote sensing (RS) is a tool in modern years for the monitoring of crops. Normalized Difference Vegetation Index (NDVI) derived from multi-temporal satellite imagery facilitates the analysis of vegetation growth stage, while comparing it with field/historical departmental yield data. Historical metrological data is also very useful in crop yield estimation especially in arid/semi-arid climatic zones. The metrological conditions including rainfall, humidity, sunshine, and temperature plays vital role in the growth and yield of crops; thus, the climatic conditions can adversely affect the crop yields if are not in accordance with growth requirement of a particular crop. Most of the agricultural land of Punjab province is in semi-arid climatic zone including Chakwal, Jhelum, Mianwali, Khushab, Sargodha, Mandi Bahauddin, Gujranwala, Hafizabad, Shiekhupura, Nankana Sahib, Lahore, Kasur, Faislabad and Chiniot districts. The study will investigate the impact of climate change on wheat crop yields of Chakwal district using advanced RS techniques from 1990 to 2015. Image classification to determine arable and non-arable lands; estimation of changes in temperature using thermal bands of satellite imagery, comparison of historical NDVI profiles; use of climatic data along with nonspatial departmental data for crop yield estimation and drawing its relationship with climatic variables.
Published in | Optics (Volume 9, Issue 1) |
DOI | 10.11648/j.optics.20200901.11 |
Page(s) | 1-7 |
Creative Commons |
This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited. |
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Metrological Data, Remote Sensing, Crop Yield Estimation, Semi-arid, Chakwal
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APA Style
Zeeshan Zafar, Shoaib Farooq, Muhammad Irfan Ahamad, Muhammad Sajid Mehmood, Nasir Abbas, et al. (2020). Modelling the Climate Change on Crop Estimation in the Semi-Arid Region of Pakistan Using Multispectral Remote Sensing. Optics, 9(1), 1-7. https://doi.org/10.11648/j.optics.20200901.11
ACS Style
Zeeshan Zafar; Shoaib Farooq; Muhammad Irfan Ahamad; Muhammad Sajid Mehmood; Nasir Abbas, et al. Modelling the Climate Change on Crop Estimation in the Semi-Arid Region of Pakistan Using Multispectral Remote Sensing. Optics. 2020, 9(1), 1-7. doi: 10.11648/j.optics.20200901.11
AMA Style
Zeeshan Zafar, Shoaib Farooq, Muhammad Irfan Ahamad, Muhammad Sajid Mehmood, Nasir Abbas, et al. Modelling the Climate Change on Crop Estimation in the Semi-Arid Region of Pakistan Using Multispectral Remote Sensing. Optics. 2020;9(1):1-7. doi: 10.11648/j.optics.20200901.11
@article{10.11648/j.optics.20200901.11, author = {Zeeshan Zafar and Shoaib Farooq and Muhammad Irfan Ahamad and Muhammad Sajid Mehmood and Nasir Abbas and Summar Abbas}, title = {Modelling the Climate Change on Crop Estimation in the Semi-Arid Region of Pakistan Using Multispectral Remote Sensing}, journal = {Optics}, volume = {9}, number = {1}, pages = {1-7}, doi = {10.11648/j.optics.20200901.11}, url = {https://doi.org/10.11648/j.optics.20200901.11}, eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.optics.20200901.11}, abstract = {Remote sensing (RS) is a tool in modern years for the monitoring of crops. Normalized Difference Vegetation Index (NDVI) derived from multi-temporal satellite imagery facilitates the analysis of vegetation growth stage, while comparing it with field/historical departmental yield data. Historical metrological data is also very useful in crop yield estimation especially in arid/semi-arid climatic zones. The metrological conditions including rainfall, humidity, sunshine, and temperature plays vital role in the growth and yield of crops; thus, the climatic conditions can adversely affect the crop yields if are not in accordance with growth requirement of a particular crop. Most of the agricultural land of Punjab province is in semi-arid climatic zone including Chakwal, Jhelum, Mianwali, Khushab, Sargodha, Mandi Bahauddin, Gujranwala, Hafizabad, Shiekhupura, Nankana Sahib, Lahore, Kasur, Faislabad and Chiniot districts. The study will investigate the impact of climate change on wheat crop yields of Chakwal district using advanced RS techniques from 1990 to 2015. Image classification to determine arable and non-arable lands; estimation of changes in temperature using thermal bands of satellite imagery, comparison of historical NDVI profiles; use of climatic data along with nonspatial departmental data for crop yield estimation and drawing its relationship with climatic variables.}, year = {2020} }
TY - JOUR T1 - Modelling the Climate Change on Crop Estimation in the Semi-Arid Region of Pakistan Using Multispectral Remote Sensing AU - Zeeshan Zafar AU - Shoaib Farooq AU - Muhammad Irfan Ahamad AU - Muhammad Sajid Mehmood AU - Nasir Abbas AU - Summar Abbas Y1 - 2020/12/04 PY - 2020 N1 - https://doi.org/10.11648/j.optics.20200901.11 DO - 10.11648/j.optics.20200901.11 T2 - Optics JF - Optics JO - Optics SP - 1 EP - 7 PB - Science Publishing Group SN - 2328-7810 UR - https://doi.org/10.11648/j.optics.20200901.11 AB - Remote sensing (RS) is a tool in modern years for the monitoring of crops. Normalized Difference Vegetation Index (NDVI) derived from multi-temporal satellite imagery facilitates the analysis of vegetation growth stage, while comparing it with field/historical departmental yield data. Historical metrological data is also very useful in crop yield estimation especially in arid/semi-arid climatic zones. The metrological conditions including rainfall, humidity, sunshine, and temperature plays vital role in the growth and yield of crops; thus, the climatic conditions can adversely affect the crop yields if are not in accordance with growth requirement of a particular crop. Most of the agricultural land of Punjab province is in semi-arid climatic zone including Chakwal, Jhelum, Mianwali, Khushab, Sargodha, Mandi Bahauddin, Gujranwala, Hafizabad, Shiekhupura, Nankana Sahib, Lahore, Kasur, Faislabad and Chiniot districts. The study will investigate the impact of climate change on wheat crop yields of Chakwal district using advanced RS techniques from 1990 to 2015. Image classification to determine arable and non-arable lands; estimation of changes in temperature using thermal bands of satellite imagery, comparison of historical NDVI profiles; use of climatic data along with nonspatial departmental data for crop yield estimation and drawing its relationship with climatic variables. VL - 9 IS - 1 ER -