Smallholders’ Agricultural Production Efficiency of Conservation Tillage in Jianghan Plain, China—Based on a Three-Stage DEA Model
Abstract
:1. Introduction
2. Study Area and Data Collection
2.1. Study Area
2.2. Data Collection
3. Research Methods and Variables’ Definition
3.1. Three-Stage DEA Model
3.1.1. The First Stage: The Traditional DEA Model
3.1.2. The Second Stage: Stochastic Frontier Analysis
3.1.3. The Third Stage: Adjusted Efficiency
3.2. Variables’ Definition
3.2.1. Definition of Input–Output Variables
3.2.2. Definition of Environmental Variables
4. Empirical Analysis of Smallholders’ Agricultural Production Efficiency
4.1. Analysis of Smallholders’ Traditional Agricultural Production Efficiency
4.2. Analysis of Impact of Environment Variables on Efficiency
4.3. Smallholders’ True Efficiency
5. Conclusions and Policy Implications
5.1. Conclusions
5.2. Policy Implications
Author Contributions
Funding
Conflicts of Interest
References
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Variables | Planting Area | Seed Consumption | Labor Input | Pesticide Usage | Chemical Fertilizer Usage | Agricultural Film Usage |
---|---|---|---|---|---|---|
Agricultural output | 0.407 *** (0.000) | 0.048 *** (0.000) | 0.064 *** (0.000) | 0.253 *** (0.000) | 0.247 *** (0.000) | 0.069 * (0.073) |
Variable Type | Variable Name | Mean | SD |
---|---|---|---|
Output variables | Agricultural output (kg/hm2) | 2.55 × 104 | 820.42 |
Input variables | Planting area (hm2) | 1.47 | 1.87 |
Seed consumption (Yuan/hm2) | 5666.7 | 691.57 | |
Labor input (person) | 2.18 | 1.57 | |
Pesticide usage (Yuan/hm2) | 4468.65 | 439.27 | |
Chemical fertilizer usage (Yuan/hm2) | 5474.1 | 351.85 | |
Agricultural film usage (Yuan/hm2) | 323.25 | 77.99 | |
Environmental variables | Smallholders’ agricultural income (Yuan) | 47,380.37 | 49,100.91 |
Education level of smallholders(Year) | 2.42 | 0.90 | |
Policy support (Yes or No) | 1.54 | 0.50 | |
Information acquisition (5-Likert Scale) | 1.84 | 0.88 |
Variables | Planting Area | Seed Consumption | Labor Input | Pesticide Usage | Chemical Fertilizer Usage | Agricultural Film Usage |
---|---|---|---|---|---|---|
Constant term (β0) | −17.75 *** | −279.94 *** | −274.25 *** | −274.25 *** | −350.42 *** | −34.99 *** |
Smallholders’ agricultural income (β1) | 0.00004 *** | 0.00006 | 0.00003 * | 0.00005 | 0.00002 | 0.00002 * |
Education level of smallholders (β2) | −0.02 * | 1.49 | 0.01574 | −11.59 * | 0.61 | −1.93 ** |
Policy support (β3) | −3.69 *** | −63.36 *** | −0.00659 ** | −54.10 *** | −63.12 *** | −0.17 |
Information acquisition (β4) | −0.22 | 1.00 | 0.00604 | −1.75 * | −3.42 * | −0.16 * |
δ2 | −842.76 *** | 39,215.74 *** | 2.60 *** | 20,765.72 *** | 19,623.25 *** | 8987.48 *** |
γ | 1.00 ** | 1.00 *** | 1.00 *** | 1.00 *** | 1.00 *** | 1.00 *** |
Log-likelihood Function | −2663.00 *** | −5179.51 ** | −857.83 *** | −4612.78 *** | −4593.88 *** | −3507.67 *** |
Likelihood Ratio test | 695.15 | 649.84 | 805.81 | 647.48 | 635.99 | 714.02 |
Efficiency Value | N | Rank Mean | Sum of Ranks | Z Test Statistics | Cumulative Probability of Two-Tailed Binomial Distribution | |
---|---|---|---|---|---|---|
The first-stage efficiency value | Negative rank | 418 a | 364.33 | 152,289.30 | −8.130 a | 0.000 |
The third-stage efficiency value | Positive rank | 250 b | 284.63 | 71,156.50 | ||
sum | 695 |
Efficiency Value | Efficiency Value of the First Stage | Efficiency Value of the Third Stage |
---|---|---|
The total efficiency | 0.465 | 0.434 |
The pure technical efficiency | 0.501 | 0.469 |
The scale efficiency | 0.930 | 0.926 |
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Yang, X.; Shang, G. Smallholders’ Agricultural Production Efficiency of Conservation Tillage in Jianghan Plain, China—Based on a Three-Stage DEA Model. Int. J. Environ. Res. Public Health 2020, 17, 7470. https://doi.org/10.3390/ijerph17207470
Yang X, Shang G. Smallholders’ Agricultural Production Efficiency of Conservation Tillage in Jianghan Plain, China—Based on a Three-Stage DEA Model. International Journal of Environmental Research and Public Health. 2020; 17(20):7470. https://doi.org/10.3390/ijerph17207470
Chicago/Turabian StyleYang, Xin, and Guangyin Shang. 2020. "Smallholders’ Agricultural Production Efficiency of Conservation Tillage in Jianghan Plain, China—Based on a Three-Stage DEA Model" International Journal of Environmental Research and Public Health 17, no. 20: 7470. https://doi.org/10.3390/ijerph17207470
APA StyleYang, X., & Shang, G. (2020). Smallholders’ Agricultural Production Efficiency of Conservation Tillage in Jianghan Plain, China—Based on a Three-Stage DEA Model. International Journal of Environmental Research and Public Health, 17(20), 7470. https://doi.org/10.3390/ijerph17207470