Exploring the Evolutionary Characteristics of Food Security in China and the United States from a Multidimensional Perspective
Abstract
:1. Introduction
2. Literature Review
3. Construction of Food Security System
3.1. Principles, Ideas, and Framework for Indicator System
3.2. Composition of the Indicator System
- (1)
- Quantity Security
- (2)
- Quality Security
- (3)
- Circulation Security
- (4)
- Economic Security
- (5)
- Ecological Resource Security
- (6)
- Policy Security
4. Methods and Data
4.1. Data Sources
4.2. Research Method Selection
4.2.1. Weighting the CRITIC Method
4.2.2. Weighting the MEREC Method
4.2.3. Cooperative Game Theory-Based Weight Optimization
4.2.4. MARCOS Method
4.2.5. Obstacle Degree Model
5. Results
5.1. Determination of Weights of Indicators
5.2. Comprehensive Evolution of Food Security Levels in China and the United States
5.3. Comparison of Changes in Various Dimensional Subsystems of Food Security
5.3.1. Quantity Security
5.3.2. Quality Security
5.3.3. Circulation Security
5.3.4. Economic Security
5.3.5. Ecological Resource Security
5.3.6. Policy Security
5.4. Evolution of Obstacles in Food Security
6. Discussion and Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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First-Level Indicators | Second-Level Indicators/Unit | Index Definition/Explanation |
---|---|---|
Quantity Security (A) | A1: Grain production volatility (%) | (Grain yield—Average grain yield in the last 5 years)/Average grain yield in the last 5 years |
A2: Grain yield per unit area (kg/hm2) | Total grain production/total grain sown area | |
A3: Total food production (t) | Total production of grains, beans, and tubers | |
A4: Per capita grain possession (kg/person) | Total grain production/total population | |
Quality Security (B) | B1: Per capita protein supply (g/day/person) | Total food protein supply/(total population × 365) |
B2: Per capita fat supply (g/day/person) | Total food fat supply/(total population × 365) | |
B3: Dietary diversity (%) | Share of dietary energy supply derived from cereals, roots, and tubers | |
B4: Dietary energy supply adequacy (%) | Dietary energy supply/dietary energy requirement | |
Circulation Security (C) | C1: Density of railway routes (km/km2) | Railway operating mileage/total land area |
C2: Density of highway routes (km/km2) | Highway operating mileage/total land area | |
C3: Freight turnover (tons-km) | Total freight tonnage × freight average haul distance | |
C4: Stock to use ratio (%) | End-of-year grain stockpile/next year’s grain consumption | |
C5: Per capita grain consumption (kg) | Total grain consumption/total population | |
C6: Grain self-sufficiency rate (%) | Total grain production/(total grain production + imports-exports) | |
Economic Security (D) | D1: Per capita disposable income (USD) | Reflecting the actual consumption level of residents |
D2: Poverty incidence rate (%) | Number of people below the poverty line/total population | |
D3: Engel’s coefficient for residents (%) | Food consumption expenditure/total consumption expenditure | |
D4: Food price volatility (%) | The consumer price index for food reflects market price fluctuations | |
D5: Agricultural labor productivity (USD/person) | Total agricultural production value/number of agricultural workers | |
Ecological Resource Security (E) | E1: Pesticide use per unit of arable land (kg/hm2) | Pesticide consumption/total arable land |
E2: Fertilizer use per unit of arable land (kg/hm2) | Consumption of chemical fertilizer/total arable Land | |
E3: Proportion of drought-affected area (%) | Proportion of agricultural crops affected by drought area | |
E4: Effective irrigation area (hm2) | Area of arable land with regular irrigation for agricultural production | |
E5: Per capita water resources (m3/person) | Total freshwater resources/total population | |
E6: Arable land per capita (hm2/person) | Total arable land area/total population | |
Policy Security (F) | F1: Agricultural research funding expenditure (USD) | Reflecting the government’s investment intensity in agricultural research |
F2: Political stability | Measuring the degree of political stability of a country | |
F3: Government effectiveness | Measuring efficiency in policy formulation and implementation | |
F4: Regulatory quality | Measuring the regulatory strength of policy formulation and implementation |
Country | Indicator | Data Sources |
---|---|---|
China | A1, A2, A3, A4, C5, D1, D3, D4, D5, E1, E2, E3, E4, E5, and E6 | the National Bureau of Statistics and calculated by the authors |
B1, B2, B3, and B4 | FAO | |
C1, C2, and C3 | the National Bureau of Statistics, the Ministry of Transport of China, and calculated by the authors | |
C4 and C6 | the China Rural Statistical Yearbook, the China Grain and Materials Reserve Yearbook, the China Statistical Yearbook, and Bric Agricultural Data Intelligence Terminal and calculated by the authors | |
D2, F2, F3, and F4 | the World Bank | |
F1 | the China Statistical Yearbook On Science and Technology | |
US | A1, A2, A3, A4, C4, C5, C6, E4, and F1 | the U.S. Department of Agriculture, Agricultural Statistics, Acreage and calculated by the authors |
B1, B2, B3, B4, E1, and E5 | FAO | |
C1, C2, and C3 | the U.S. Department of Transportation and calculated by the authors | |
D1, D3, D4, and D5 | the U.S. Bureau of Economic Analysis, the U.S. Department of Labor and calculated by the authors | |
D2, E2, E6, F2, F3, and F4 | the World Bank | |
E3 | the U.S. National Integrated Drought Information System and calculated by the authors |
First-Level Indicator | Second-Level Indicators | CRITIC Weighting | MEREC Weighting | Combination Weighting |
---|---|---|---|---|
Quantity Security (A) 14.82% | A1 | 7.07% | 4.36% | 5.72% |
A2 | 2.01% | 2.79% | 2.40% | |
A3 | 3.22% | 4.16% | 3.69% | |
A4 | 3.16% | 2.87% | 3.02% | |
Quality Security (B) 7.63% | B1 | 1.57% | 1.71% | 1.64% |
B2 | 2.67% | 1.75% | 2.21% | |
B3 | 2.00% | 2.34% | 2.17% | |
B4 | 1.65% | 1.56% | 1.61% | |
Circulation Security (C) 18.20% | C1 | 2.99% | 2.51% | 2.75% |
C2 | 2.57% | 4.20% | 3.39% | |
C3 | 5.13% | 3.70% | 4.41% | |
C4 | 3.56% | 3.33% | 3.45% | |
C5 | 2.30% | 2.03% | 2.16% | |
C6 | 2.14% | 1.94% | 2.04% | |
Economic Security (D) 28.26% | D1 | 5.12% | 7.72% | 6.42% |
D2 | 5.40% | 7.21% | 6.31% | |
D3 | 2.71% | 2.25% | 2.48% | |
D4 | 5.20% | 6.78% | 5.99% | |
D5 | 5.86% | 8.28% | 7.07% | |
Ecological Resource Security (E) 19.48% | E1 | 3.51% | 2.81% | 3.16% |
E2 | 3.52% | 2.18% | 2.85% | |
E3 | 4.58% | 3.97% | 4.28% | |
E4 | 3.66% | 2.22% | 2.94% | |
E5 | 3.46% | 2.92% | 3.19% | |
E6 | 3.32% | 2.80% | 3.06% | |
Policy Security (F) 11.61% | F1 | 4.83% | 6.25% | 5.54% |
F2 | 2.77% | 0.89% | 1.83% | |
F3 | 2.91% | 1.09% | 2.00% | |
F4 | 3.11% | 1.38% | 2.25% |
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Tang, C.; Xie, X.; Wei, G.; Pan, L.; Qi, Z. Exploring the Evolutionary Characteristics of Food Security in China and the United States from a Multidimensional Perspective. Foods 2024, 13, 2272. https://doi.org/10.3390/foods13142272
Tang C, Xie X, Wei G, Pan L, Qi Z. Exploring the Evolutionary Characteristics of Food Security in China and the United States from a Multidimensional Perspective. Foods. 2024; 13(14):2272. https://doi.org/10.3390/foods13142272
Chicago/Turabian StyleTang, Chang, Xiaoliang Xie, Guo Wei, Linglong Pan, and Zihan Qi. 2024. "Exploring the Evolutionary Characteristics of Food Security in China and the United States from a Multidimensional Perspective" Foods 13, no. 14: 2272. https://doi.org/10.3390/foods13142272
APA StyleTang, C., Xie, X., Wei, G., Pan, L., & Qi, Z. (2024). Exploring the Evolutionary Characteristics of Food Security in China and the United States from a Multidimensional Perspective. Foods, 13(14), 2272. https://doi.org/10.3390/foods13142272