International Journal of Neutrosophic Science

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https://doi.org/10.54216/IJNS

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2690-6805ISSN (Online) 2692-6148ISSN (Print)

Volume 25 , Issue 1 , PP: 338-346, 2025 | Cite this article as | XML | Html | PDF | Full Length Article

Soil Organic Transformations in Urban Agricultural Systems: Application of a Neutrosophic Multicriteria Approach for Comprehensive Evaluation

Paolo Chasi Vizuete 1 *

  • 1 Technical University of Cotopaxi, Ecuador - (wilman.chasi@utc.edu.ec)
  • Doi: https://doi.org/10.54216/IJNS.250130

    Received: December 29, 2023 Revised: March 7, 2024 Accepted: July 1, 2024
    Abstract

    This study highlights the importance of urban agriculture in ensuring food security and promoting sustainability in urban areas, using a neutrosophic multi-criteria approach to evaluate the impact of biostimulants and organic additives on soil quality, plant growth, and crop yields. The research demonstrates that biofertilizers such as Chromococcus and Azotobacter significantly improve nutrient availability and plant health, resulting in robust and high-quality harvests, while mineral additives like zeolites enhance soil fertility and moisture retention. Three scenarios were analyzed using neutrosophic logic to handle the inherent uncertainty in urban agricultural systems: the first scenario shows exceptional plant growth and yield with high sustainability (valued as "Very Very High" according to neutrosophic logic), the second scenario highlights challenges in vegetative growth and sustainability (valued as "Low"), and the third scenario combines good plant growth with high sustainability and significant contributions to climate change mitigation (valued as "Medium High"). In summary, integrating organic amendments and biofertilizers in urban agriculture, evaluated through neutrosophic methods, is essential for creating resilient and productive agricultural systems, benefiting soil health, biodiversity, resource conservation, and local economies.

    Keywords :

    Biofertilizers , Neutrosophic Multicriteria Method , Aggregation Operators , OWA

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    Cite This Article As :
    Chasi, Paolo. Soil Organic Transformations in Urban Agricultural Systems: Application of a Neutrosophic Multicriteria Approach for Comprehensive Evaluation. International Journal of Neutrosophic Science, vol. , no. , 2025, pp. 338-346. DOI: https://doi.org/10.54216/IJNS.250130
    Chasi, P. (2025). Soil Organic Transformations in Urban Agricultural Systems: Application of a Neutrosophic Multicriteria Approach for Comprehensive Evaluation. International Journal of Neutrosophic Science, (), 338-346. DOI: https://doi.org/10.54216/IJNS.250130
    Chasi, Paolo. Soil Organic Transformations in Urban Agricultural Systems: Application of a Neutrosophic Multicriteria Approach for Comprehensive Evaluation. International Journal of Neutrosophic Science , no. (2025): 338-346. DOI: https://doi.org/10.54216/IJNS.250130
    Chasi, P. (2025) . Soil Organic Transformations in Urban Agricultural Systems: Application of a Neutrosophic Multicriteria Approach for Comprehensive Evaluation. International Journal of Neutrosophic Science , () , 338-346 . DOI: https://doi.org/10.54216/IJNS.250130
    Chasi P. [2025]. Soil Organic Transformations in Urban Agricultural Systems: Application of a Neutrosophic Multicriteria Approach for Comprehensive Evaluation. International Journal of Neutrosophic Science. (): 338-346. DOI: https://doi.org/10.54216/IJNS.250130
    Chasi, P. "Soil Organic Transformations in Urban Agricultural Systems: Application of a Neutrosophic Multicriteria Approach for Comprehensive Evaluation," International Journal of Neutrosophic Science, vol. , no. , pp. 338-346, 2025. DOI: https://doi.org/10.54216/IJNS.250130