Journal of Vegetables Sciences

Journal of Vegetables Sciences

Investigating the spatial variations of water consumption and fertilizer resource efficiencies in potato in Iran

Document Type : Original Article

Authors
1 PhD student in Agroecology, Department of Agrotechnology, Faculty of Agriculture, Ferdowsi University of Mashhad, Mashhad, Iran
2 Associate Professor, Department of Agrotechnology, Faculty of Agriculture, Ferdowsi University of Mashhad, Mashhad, Iran
3 Professor, Department of Agrotechnology, Faculty of Agriculture, Ferdowsi University of Mashhad, Mashhad, Iran
Abstract
Extended Abstract
1.     Introduction: As the global population continues to rise, the demand for food production has intensified. Limited water resources and environmental pollution resulting from the excessive use of chemical fertilizers have posed significant challenges to increasing food production. One viable approach to enhancing the sustainable production of agricultural products is to improve water use efficiency and optimize the utilization of various resources. The potato (Solanum tuberosum L.) requires substantial amounts of nitrogen (N), potassium (K), and phosphorus (P) fertilizers, as well as water, to achieve high yields. The availability of these inputs must be aligned with the plant's dynamic temporal needs; however, they also need to be accessible in the soil zones where the crop's root system can absorb them. Additionally, conditions must be favorable for root activity and nutrient uptake. These interactions are complex and influenced by the biological, physical, and chemical characteristics of the soil, as well as climatic conditions, which introduce a high degree of uncertainty. Therefore, enhancing the efficiency of resource consumption presents a significant challenge. This study aimed to investigate the spatial variations in the efficiencies of key inputs, namely nitrogen, phosphorus, potassium, and water consumption within potato crops in Iran.
2.     Materials and Methods: To explore the spatial variations in water, nitrogen, phosphorus, and potassium consumption efficiencies for potatoes from 2011 to 2020, research was conducted across various regions of Iran. Initially, provinces that produced over 80 percent of the country’s potatoes were identified. Subsequently, cities within these provinces that contributed more than 80 percent of potato production were selected for analysis. Data were collected through recorded statistics, information reviews, and face-to-face interviews. Efficiency indicators for nitrogen, phosphorus, potassium, and water consumption in these areas were calculated, along with correlation coefficients (Pearson coefficients) between climatic parameters, tuber yield, and input usage. Data analysis was performed using SigmaPlot software.
3.     Results and Discussion: The findings indicated that the highest nitrogen consumption efficiency was observed in Bahar city of Hamadan province (242.71 kg tubers per kg nitrogen), while Meshkin city in Ardabil province exhibited the highest water consumption efficiency (8.96 kg tubers per m³ water). The average consumption efficiencies for inputs revealed that Ardabil province had the highest efficiencies for nitrogen (159.01 kg tubers per kg nitrogen), phosphorus (177.30 kg tubers per kg phosphorus), and water (7.15 kg tubers per m² of water). The highest potassium use efficiency, at 628.27 kg tubers per kg potassium, was recorded in Kerman province. Conversely, Golestan province exhibited the lowest efficiencies for nitrogen (20.54 kg tubers per kg nitrogen), phosphorus (35.89 kg tubers per kg phosphorus), and potassium (21.72 kg tubers per kg potassium). Kerman province also showed the lowest water consumption efficiency at 593.0 kg tubers per m³ of water. The research results further indicated that nitrogen and water consumption efficiencies had a strong positive correlation with each other, whereas potassium consumption efficiency did not significantly correlate with the efficiencies of other resources. Regression analysis revealed that increases in nitrogen and phosphorus had the most substantial positive impact on potato yield, while temperature had the least effect. Interestingly, higher potassium levels were associated with a negative impact on potato yield 
4.     Conclusion: Strong interactions between water and various nutrient use efficiencies are prevalent in many farming systems. Management practices that aim to improve water use efficiency (WUE), nitrogen use efficiency (NUE), phosphorus use efficiency (PUE), and potassium use efficiency (KUE) simultaneously tend to be more successful than those that focus on optimizing these inputs individually. The complexity of enhancing NUE, PUE, KUE, and WUE necessitates an integrated approach that combines agronomy, breeding, and crop physiology to better understand the interactions among these indicators and their related traits under varying environmental conditions. Therefore, sustainable intensification of agriculture should prioritize management strategies aimed at enhancing both water and nutrient use efficiencies, particularly nitrogen. Given the significant correlations among resource use efficiencies and their direct impact on potato yield, it is evident that investigating and managing climatic factors to improve resource consumption efficiency in each region can significantly influence tuber yield. This, in turn, can help reduce the excessive consumption of various inputs within agricultural ecosystems.
Keywords

Abdul Hannan, A., Arif, M., Ranjha, A. M., Abid, A., Fan, X. H. & Li, Y. C. (2011). Using soil potassium adsorption and yield response models to determine potassium fertilizer rates for potato crop on a calcareous soil in Pakistan. Communications in Soil Science and Plant Analysis, 42(6), 645-655. doi.org/10.1080/00103624.2011.550378
Afsharmanesh, R., Rahimi, A., Sahhafi, S. R. & Salehi, M. (2022). Physiological response of quinoa to nitrogen application under salinity conditions. Journal of Crop Production and Processing, 11(4), 129-143. doi.org/10.47176/jcpp.11.4.20089  (In Persian)
Ahmadi, M., Mohammaddoost Chamanabad, H.R., Tobeh, A., Fakhari, R. & Farzaneh, S. (2025). Evaluation of phenological stages of three potato cultivars based on growth degree-day, light and thermal indices, and their effect on yield. Journal of Vegetable Sciences, 17(1), 155-168. doi:10.22034/iuvs.2024.2021861.1350 (In Persian)
Andrea, Á., Muriel, Q., Stanley, L., Juan Pablo, M. & Carolina, L. (2020). Tuber yield and quality responses of potato to moderate temperature increase during tuber bulking under two water availability scenarios. Field Crops Research, 251, 107786. doi.org/10.1016/j.fcr.2020.107786
Arshadi, M. J., Khazaei, H. R. & Kafi, M. (2013). Evaluation of effect of nitrogen topdress fertilizer application by using chlorophyll meter on yield, yield components and growth indices of potato. Iranian Journal of Field Crops Research, 11(4), 573-582. doi.org/10.22067/gsc.v11i4.32654 (In Persian)
Askari, N., Ghahramani, R., Reisi, A., Sadat- Hosseini, M. & Parsa Motlagh, B. (2023). The role of thermal stress on in vitro potato micromicrotuber induction. Journal of Vegetables Sciences, 6(2), 73-84. doi: 10.22034/iuvs.2022.562669.1236 (In Persian)
Aulakh, M. S. & Malhi, S. S. (2005). Interactions of nitrogen with other nutrients and water: effect on crop yield and quality, nutrient use efficiency, carbon sequestration, and environmental pollution. Advances in Agronomy, 86, 342-409. doi.org/10.1016/S0065-2113(05)86007-9
Benabderrazik, K., Kopainsky, B., Tazi, L., Joerin, J. & Six, J. (2021). Agricultural intensification can no longer ignore water conservation–A systemic modelling approach to the case of tomato producers in Morocco. Agricultural Water Management, 256, 107082. doi.org/10.1016/j.agwat.2021.107082
Biswas, A., Chatterjee, S., Viswanath, M., Roy, A. & Roy, S. (2021). Consumptive water footprints and water use efficiency of two potato cultivars under different planting dates with different irrigation frequencies. The Pharma Innovation Journal, 10(6), 862-862.
Cambouris, A. N., St. Luce, M., Zebarth, B. J., Ziadi, N., Grant, C. A. & Perron, I. (2016). Potato response to nitrogen sources and rates in an irrigated sandy soil. Agronomy Journal, 108(1), 391-401. doi.org/10.2134/agronj2015.0351
Darwish, T., Atallah, T., Elkhatb, M. & Hajasan, S. (2002). Impact of irrigation and fertigation on NO3 leaching and soil-ground water contamination in Lebanon. 17thWCSS, 14th-21st August, Thailand.
El-Abedin, T. K. Z., Mattar, M. A., Alazba, A. A. & Al-Ghobari, H. M. (2017). Comparative effects of two water-saving irrigation techniques on soil water status, yield, and water use efficiency in potato. Scientia Horticulturae, 225, 525-53. doi.org/10.1016/j.scienta.2017.07.044
Emam, Y. & Ziaei, A. (2010). Evaluation of water and photosynthetic nitrogen use efficiency in two maize hybrids. Iranian Journal of Field Crop Science, 41(3), 27-39. (In Persian)
Engelbrecht, B. M. J., Comita, L. S., Condit, R., Kursar, T. A., Tyree, M. T., Turner, L. & Hubbell, S. P. (2007). Drought sensitivity shapes species distribution patterns in tropical forests. Nature, 447, 80-82. doi.org/10.1038/nature05747
Eskandari, A., Khazaie, H., Nezami, A., Kafi, M. & Majdabadi, A. (2011). Study the effects of irrigation regimes on physiological traits, yield and water use efficiency of potato (Solanum tuberosum L.) in Mashhad weather condition. Journal of Horticultural Science, 25(2), 201-210. doi.org/10.22067/gsc.v0i0.71123 (In Persian)
Fageria, N. K., Baligar, V. C. & Li, Y. C. (2008). The role of nutrient efficient plants in improving crop yields in the twenty first century. Journal of Plant Nutrition, 31(6), 1121-1157. doi.org/10.1080/01904160802116068
Forbes, G. A., Charkowski, A., Andrade-Piedra, J., Parker, M. L., and Schulte-Geldermann, E. (2020). Potato seed systems. The Potato Crop. Pp. 431-447. Springer, Cham.
Gastal, F., Lemaire, G., Durand, J. L. & Louarn, G. (2015). Quantifying crop responses to nitrogen and avenues to improve nitrogen-use efficiency. In: Crop physiology. pp. 161-206. Academic Press.
Ghanbari, A., Farboudi, M., Alimohammadi, R., Faramarzi, A., Jamshidi, S. & Shamspour, S. (2007). Effects of potassium sulfate (K2SO4) on quantity and quality of Agria and Satina potato cultivars in Miyaneh region, Iran. Journal of New Agricultural Science, 3(6), 69-79. (In Persian)
Gitari, H. I., Karanja, N. N., Gachene, C. K., Kamau, S., Sharma, K. & Schulte-Geldermann, E. (2018). Nitrogen and phosphorous uptake by potato (Solanum tuberosum L.) and their use efficiency under potato-legume intercropping systems. Field Crops Research, 222, 78-84. doi.org/10.1016/j.fcr.2018.03.019
Gong, X. Y., Chen, Q., Lin, S., Brueck, H., Dittert, K., Taube, F. & Schnyder, H. (2011). Tradeoffs between nitrogen and water-use efficiency in dominant species of the semiarid steppe of Inner mongolia. Plant and Soil, 340, 227-238. doi.org/10.1007/s11104-010-0525-9
Hamzehpour, G., Tobeh, A., Hassanpanah, D. & Farzaneh, S. (2025). Evaluation of tolerance of promising potato genotypes to drought stress in Ardabil region. Journal of Vegetables Sciences, 16(2), 29-50. doi: 10.22034/iuvs.2022.562871.1237 (In Persian)
Hatfield, J. L. and Dold, C. (2019). Water-use efficiency: advances and challenges in a changing climate. Frontiers in Plant Science, 10, 1-103. doi.org/10.3389/fpls.2019.00103
Honarparvar, A. & Tamiz, S. H. (2006). Appropriate irrigation interval and water consumption of potato in Ardabil. Agricultural Knowledge, 16(1), 235-244. (In Persian)
Jalali, A. 2014. Potassium application management for potato farming in soil and water salinity condition. Land Management Journal, 2(1), 1-16. (In Persian)
Jalali, A. H. & Nikouyei, A. R. (2020). Using meteorological statistics to deal with heat stress in potato. Promotional Journal of Applied Potato Sciences, 3(1), 9-16. (In Persian)
Jami Moeini, M., Modarres-Sanavy, S. A. M., Keshavarz, P., Sorooshzadeh, A. & Ganjeali, A. (2010). Relationship between root morphological characteristics and nitrogen use efficiency in six potato cultivars. Iranian Journal of Field Crops Research, 8(3), 444-454. doi.org/10.22067/gsc.v8i3.7760 (In Persian)
Jamshidi, A. M., Ahmadi, A. & Darvishi, B. (2014). Yield and quality of potato seed and edible tubers in response to different phosphorus levels and nitrogen application times. Iranian Journal of Field Crop Science, 45(4), 489-498. doi.org/10.22059/ijfcs.2014.53559 (In Persian)
Jasim, A., Sharma, L. K., Zaeen, A., Bali, S. K., Buzza, A. & Alyokhin, A. (2020). Potato phosphorus response in soils with high value of phosphorus. Agriculture, 10(7), 264-278. doi.org/10.3390/agriculture10070264
Kazemi, M. (2017). Quantitative analysis of potato production in northeastern of Iran. PhD Thesis in Agroecology, College of Agriculture, Ferdowsi University of Mashhad, Iran. (In Persian)
Keyhani, A. & Saneinejad, A. (2015). Growth and yield response of potato plants to different nitrogen levels. Journal of Crops Improvement, 17(3), 583-593. doi.org/10.22059/jci.2015.54456 (In Persian)
Keshavarzi, M. (2019). Addressing compatibility of the farm management strategies with climate change: The case of Fars province. Iranian Journal of Agricultural Extension and Education Journal, 14(2), 10-123. (In Persian)
Li, M., Zhang, H., Yang, X., Ge, M., Ma, Q., Wei, H., Dai, Q., Huo, Z., Xu, K. & Luo, D. (2014). Accumulation and utilization of nitrogen, phosphorus, and potassium of irrigated rice cultivars with high productivities and high N use efficiencies. Field Crops Research, 161, 55-63. doi.org/10.1016/j.fcr.2014.02.007
Liao, X., Liu, G., Zotarelli, L., Cui, Y. & Snodgrass, C. (2016). Impact of soil moisture and temperature on potato production using seepage and center pivot irrigation. Agricultural Water Management, 165, 230-236. doi.org/10.1016/j.agwat.2015.10.023
Lutaladio, N.B. & Castaldi, L. (2009). Potato: The hidden treasure. Journal of Food Composition and Analysis, 22(6), 491-493. doi.org/10.1016/j.jfca.2009.05.002
Meinzer, F.C. & Zhu, J. (1998). Nitrogen stress reduces the efficiency of the C4, CO2 concentrating system and therefore quantum yield in Saccharum species. Journal of Experimental Botany, 49, 1227- 234. doi.org/10.1093/jexbot/49.324.1227
Minhas, J. & Kumar, D. (2005). Tuberization in heat-tolerant hybrid Ht/92-621 under controlled temperature conditions. Potato Journal, 32, 83765147.
Ministry of Agriculture-Jihad. (2022) Agricultural Statistics, (Vol. II). Islamic Republic of Iran, Ministry of Agriculture-Jihad, Press, Iran. (In Persian)
Mirbagheri, E., Abbaspour, A., Rohani, A. & Ghorbani, H. (2012). Evaluation of phosphorus status in some potato fields of Mojen region in Semnan province. Iranian Journal of Soil Research, 26(3), 235-243. doi.org/10.22092/ijsr.2012.126402 (In Persian)
Monte, J. A., Carvalho, D. F., Medici, L. O., da Silva, L. D. B. & Pimentel, C. (2013). Growth analysis and yield of tomato crop under different irrigation depths. Revista Brasileira de Engenharia Agrícola e Ambiental, 17(9), 926- 931. doi.org/10.1590/S1415-43662013000900003
Najm, A. A., Hadi, M. R. H. S., Fazeli, F., Darzi, M. T. & Rahi, A. (2012). Effect of integrated management of nitrogen fertilizer and cattle manure on the leaf chlorophyll, yield, and tuber glycoalkaloids of agria potato. Communications in Soil Science and Plant Analysis, 43(6), 912–923. doi.org/10.1080/00103624.2012.653027
Oerke, E. C. & Dehne, H. W. (2004). Safeguarding production-losses in major crops and the role of crop protection. Crop Protection, 23(4), 275-285. doi.org/10.1016/j.cropro.2003.10.001
Rahmani, M. & Aboutalebian M. A. (2021). Response of tuber yield and some physiological growth indices of potato to phosphate and mycorrhizae under moisture stress. Journal of Crop Production and Processing, 11(3), 35-49. doi.org/10.47176/jcpp.11.3.26307  (In Persian)
Ramazanipour, M. (2019). Predict the impact of climatic change on the agro-climatic indexes and rice yield case study: North of Iran. Journal of Zonal Planning, 8(32), 69-80. (In Persian)
Rathke, G.W, Behrens, T. & Diepenbrock, W. 2006. Integrated nitrogen management strategies to improve seed yield, oil content and nitrogen efficiency of winter oilseed rape (Brassica napus L.): A review. Agriculture, Ecosystems and Environment, 117, 80-108.   doi.org/10.1016/j.agee.2006.04.006
Rykaczewska, K. (2017). Impact of heat and drought stresses on size and quality of the potato yield. Plant, Soil and Environment, 63, 40-46. doi.org/10.17221/691/2016-PSE
Sadras, V.O. & Rodriguez, D. (2010). Modelling the nitrogen-driven trade-off between nitrogen utilization efficiency and water use efficiency of wheat in eastern Australia. Field Crops Research, 118, 297-305. doi.org/10.1016/j.fcr.2010.06.010
SadreGhayen, S.H., Nakhjavani Moghaddam, M.M. & Baghani, J. (2019). Effects of planting patterns and different water levels on yield of potato affected as drip irrigation (tape) under Firuzkuh region. Iranian Journal of Irrigation and Drainage, 4(10), 99-108. (In Persian)
Sajedi, N. A., Sheikhalivand, S., Madani, H. & Safari Kamalabadi, H. 2009. Effects of planting date and nitrogen rates on agronomical traits of potato var. Markiz. New Finding in Agriculture, 3(3), 287-301. (In Persian)
Salim, N. & Raza, A. 2020. Nutrient use efficiency (NUE) for sustainable wheat production: a review. Journal of Plant Nutrition, 43(2), 297-315. doi.org/10.1080/01904167.2019.1676907
Sikder, R. K., Wang, X., Zhang, H., Gui, H., Dong, Q., Jin, D. & Song, M. (2020). Nitrogen enhances salt tolerance by modulating the antioxidant defense system and osmoregulation substance content in Gossypium hirsutum. Plants, 9(4), 450-461. doi.org/10.3390/plants9040450
Sobhani, A. & Hamidi, H. (2013). Effect of different potassium levels on yield and growth indices of potato in Mashhad climate condition. Journal of Crop Ecophysiology, 27(3), 341-356. (In Persian)
Soratto, R. P., Fernandes, A. M., Pilon, C. & Souza, M. R. (2019). Phosphorus and silicon effects on growth, yield, and phosphorus forms in potato plants. Journal of Plant Nutrition, 42(3), 218-233. doi.org/10.1080/01904167.2018.1554072
Sparrow, I. A. & Chapman, S. R. (2003). Effects of nitrogen fertilizer on potato (Solanum tuberosum L.) in Tasmania. Australian Journal of Experimental Agriculture, 43, 631-641.
Sterrett, S. B., Henninger, M. R., Yencho, G. C., Lu, W., Vinyard, B. T. & Haynes, K. G. (2003). Stability of internal heat necrosis and specific gravity in tetraploid x diploid potatoes. Crop Science, 43, 790-796. doi.org/10.2135/cropsci2003.7900
Stomph, T., Dordas, C., Baranger, A., de Rijk, J., Dong, B., Evers, J. & van der Werf, W. (2020). Designing intercrops for high yield, yield stability and efficient use of resources: are there principles? Advances in Agronomy, 160(1), 1-50. doi.org/10.1016/bs.agron.2019.10.002
The, S. V., Snyder, R. & Tegeder, M. (2021). Targeting nitrogen metabolism and transport processes to improve plant nitrogen use efficiency. Frontiers in Plant Science, 11, 628366. doi.org/10.3389/fpls.2020.628366
Timlin, D., Rahman, S. M. L., Baker, J., Reddy, V. R., Flesher, D. & Quebedeaux, B. (2006). Whole plant photosynthesis, development, and carbon partitioning in potato as a function of temperature. Agronomy Journal, 98, 1195-1203. doi.org/10.2134/agronj2005.0260
Torkaman, M., Khorramdel, S., Rezvani Moghaddam, P. & Nassiri Mahallati, M. (2023). Investigating the spatial variations of water use efficiency, and fertilizer sources for irrigated and reinfed wheat systems in different regions of Iran. Plant Productios, 46(2), 263-277. doi.org/10.22055/ppd.2023.42802.2074 (In Persian)
Trehan, S.P. & Singh, B.P. (2013). Nutrient efficiency of different crop species and potato varieties-in retrospect and prospect. Potato Journal, 40(1), 1-21.
Trifonov, P., Lazarovitch, N. & Arye, G. (2018). Water and nitrogen productivity of potato growth in desert areas under low-discharge drip irrigation. Water, 10(8), 97-115. doi.org/10.3390/w10080970
Tripler, E., Ben-Gal, A. & Shani, U. (2007). Consequence of salinity and excess boron on growth, evapotranspiration and ion uptake in date palm (Phoenix dactylifera L., cv. Medjool). Plant and Soil, 297, 147–155. doi.org/10.1007/s11104-007-9328-z
Trippensee, A., Byrne, P., Boggess, W. & Smajstrla, A. (1996). Management Effect on Irrigation Water Use for Potato Farms of North Florida; Food and Resource Economics Department, Institute of Food and Agricultural Sciences, University of Florida: Gainesville, FL, USA.
Ullah, H., Santiago-Arenas, R., Ferdous, Z., Attia, A. & Datta, A. (2019). Improving water use efficiency, nitrogen use efficiency, and radiation use efficiency in field crops under drought stress: A review. Advances in Agronomy, 156, 109-157. doi.org/10.1016/bs.agron.2019.02.002
Vaezi, A. R., Homaee, N. & Malakoti, M. J. (2002). Effect of fertigation on fertilizer use efficiency and water use efficiency on forage corn. Iranian Journal of Soil and water Research, 16(2), 152-159. (In Persian)
Vos, J. (2009). Nitrogen responses and nitrogen management in potato. Potato Research, 52(4), 305-317. doi.org/10.1007/s11540-009-9145-2
Wang, C., Zang, H., Liu, J., Shi, X., Li, S., Chen, F. & Chu, Q. (2020). Optimum nitrogen rate to maintain sustainable potato production and improve nitrogen use efficiency at a regional scale in China: A meta-analysis. Agronomy for Sustainable Development, 40(5), 1-14. doi.org/10.1007/s13593-020-00640-5
Wang, Y., Mi, G., Chen, F., Zhang, J. & Zhang, F. (2004). Response of root morphology to nitrate supply and its contribution to nitrogen accumulation in maize. Journal of Plant Nutrition, 27, 2189-2202. doi.org/10.1081/PLN200034683
Xu, F., Xiong, H., Zhang, L., Guo, X., Zhu, Y., Zhou, X. & Liu, M. (2011). Characteristics of nutrient uptake and utilization of mid-season hybrid rice under different nitrogen application rates in different locations of south west China. Acta Agronomica Sinica, 37, 882–894. doi.org/10.12357/cjea.20230691
Yang, X., Ma, Q., Zhang, H., Wei, H., Li, G., Li, M., Dai, Q., Huo, Z., Xu, K., Zhang, Q., Guo, B. & Ge, M. (2012). Characteristics and correlation analysis of N and P uptake and utilization of early maturing late Japonica under different N fertilizer levels. Acta Agronomica Sinica, 38, 174–180. doi.org/10.3724/SP.J.1006.2012.00174 Zelalem, A., Tekalign, T. & Nigussie, D. (2009). Response of potato (Solanum tuberosum L.) to different rates of nitrogen and phosphorus fertilization on vertisols at Debre Berhan, in the central highlands of Ethiopia. African Journal of Plant Science, 3, 016-024.
Zhang, G., Tang, R., Niu, S., Si, H., Yang, Q., Bizimungu, B., Regan, S. & Li, X. Q. (2020). Effects of earliness on heat stress tolerance in fifty potato cultivars. American Journal of Potato Research, 97, 23-32. doi.org/10.1007/s12230-019-09740-9
Zhang, X., Davidson, E., Mauzerall, D., Searchinger, T. D., Dumas, P. & Shen, Y. (2015). Managing nitrogen for sustainable development. Nature, 528, 51–59. doi.org/10.1038/nature15743
Zvomuya, F., Rosen, C. J., Russelle, M. P. & Gupta, S. C. (2003). Nitrate leaching and nitrogen recovery following application of polyolefin-coated urea of potato. Journal of Environmental Quality, 32, 480-489. doi.org/10.2134/jeq2003.4800
Volume 9, Issue 18
January 2026
Pages 203-225

  • Receive Date 15 January 2023
  • Revise Date 21 January 2023
  • Accept Date 27 January 2023