Forecasting Carbon Sequestration Potential in China’s Grasslands by a Grey Model with Fractional-Order Accumulation
Abstract
:1. Introduction
2. Influence Factors of Grassland Carbon Sequestration
3. Materials
3.1. Research Area
3.2. Data Sources
4. Methods
4.1. Fractional-Order Accumulated Grey Model
4.2. Particle Swarm Optimization Algorithm
5. Prediction Results and Discussion
5.1. Prediction Results of the Tibetan Plateau Grassland Region
5.2. Prediction Results of the Neimongolia–Ningxia–Gansu Grassland Region
5.3. Prediction Results and Analysis for the Xinjiang Grassland Region
5.4. Prediction Results of the Southern Grassland Region
5.5. Prediction Results of the Northeast Grassland Region
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Xizang (Tibet) | Neimenggu | Qinghai | Xinjiang | Sichuan | Gansu | Shanxi | Ningxia | Hebei | Yunnan | Heilongjiang | |
---|---|---|---|---|---|---|---|---|---|---|---|
2018 | 879,376 | 544,580 | 457,787 | 377,747 | 161,058 | 157,440 | 52,493 | 34,516 | 32,442 | 23,850 | 6472 |
2019 | 881,645 | 546,044 | 454,948 | 377,731 | 160,594 | 155,182 | 50,601 | 34,237 | 31,557 | 23,267 | 5545 |
2020 | 881,697 | 548,986 | 452,485 | 374,908 | 160,026 | 153,048 | 49,010 | 34,161 | 31,646 | 22,154 | 6007 |
2021 | 882,649 | 548,133 | 452,116 | 374,722 | 159,939 | 152,567 | 48,260 | 34,097 | 31,409 | 21,884 | 6155 |
2022 | 884,822 | 542,587 | 452,023 | 372,212 | 158,765 | 151,216 | 46,806 | 33,987 | 31,138 | 21,005 | 6617 |
Grassland Region | Vegetation Carbon Density (g C m−2) | Soil Carbon Density (kg C m−2) | Total Carbon Density (kg C m−2) |
---|---|---|---|
Tibetan Plateau | 1241 | 21.7 | 21.7 |
Neimongolia Plateau | 205 | 7.7 | 7.9 |
Xinjiang | 409 | 13.8 | 14.2 |
Southern | 840 | 1.3 | 2.1 |
Loess Plateau | 538 | 6.0 | 6.5 |
North Warm Temperate | 1010 | 7.6 | 8.6 |
Northeast | 1202 | 18.3 | 19.5 |
Year | Xizang (Tibet) | Neimenggu | Qinghai | Xinjiang | Sichuan | Gansu | Shanxi | Ningxia | Hebei | Yunnan | Heilongjiang |
---|---|---|---|---|---|---|---|---|---|---|---|
2018 | 19.0824 | 4.3022 | 9.9340 | 5.3640 | 0.3382 | 2.3301 | 0.3412 | 0.2485 | 0.2790 | 0.0501 | 0.1262 |
2019 | 19.1317 | 4.3137 | 9.8724 | 5.3638 | 0.3372 | 2.2967 | 0.3289 | 0.2465 | 0.2714 | 0.0489 | 0.1081 |
2020 | 19.1328 | 4.3370 | 9.8189 | 5.3237 | 0.3361 | 2.2654 | 0.3186 | 0.2452 | 0.2721 | 0.0465 | 0.1171 |
2021 | 19.1535 | 4.3303 | 9.8109 | 5.3210 | 0.3359 | 2.2580 | 0.3137 | 0.2455 | 0.2701 | 0.0460 | 0.1200 |
2022 | 19.2006 | 4.2864 | 9.8091 | 5.2854 | 0.3334 | 2.2380 | 0.3042 | 0.2447 | 0.2678 | 0.0441 | 0.1290 |
Year | Actual Value (1012 kg) | 0.3-Order Fitted Value (1012 kg) | 1-Order Fitted Value (1012 kg) |
---|---|---|---|
2018 | 23.3235 | 23.3235 | 23.3235 |
2019 | 23.1876 | 23.1866 | 23.1863 |
2020 | 23.0806 | 23.1813 | 23.1815 |
2021 | 23.0513 | 23.0518 | 23.0526 |
2022 | 22.9422 | 22.9434 | 22.9437 |
MAPE (%) | 1.74 | 3.45 |
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Wu, L.; Wang, C.; Wang, C.; Gong, W. Forecasting Carbon Sequestration Potential in China’s Grasslands by a Grey Model with Fractional-Order Accumulation. Fractal Fract. 2024, 8, 536. https://doi.org/10.3390/fractalfract8090536
Wu L, Wang C, Wang C, Gong W. Forecasting Carbon Sequestration Potential in China’s Grasslands by a Grey Model with Fractional-Order Accumulation. Fractal and Fractional. 2024; 8(9):536. https://doi.org/10.3390/fractalfract8090536
Chicago/Turabian StyleWu, Lei, Chun Wang, Chuanhui Wang, and Weifeng Gong. 2024. "Forecasting Carbon Sequestration Potential in China’s Grasslands by a Grey Model with Fractional-Order Accumulation" Fractal and Fractional 8, no. 9: 536. https://doi.org/10.3390/fractalfract8090536
APA StyleWu, L., Wang, C., Wang, C., & Gong, W. (2024). Forecasting Carbon Sequestration Potential in China’s Grasslands by a Grey Model with Fractional-Order Accumulation. Fractal and Fractional, 8(9), 536. https://doi.org/10.3390/fractalfract8090536