How Does Agricultural Green Transformation Improve Residents’ Health? Empirical Evidence from China
Abstract
:1. Introduction
2. Theoretical Mechanism Analysis
3. Methodology
3.1. Method
3.1.1. Fixed-Effects Model
3.1.2. Threshold Effect
3.1.3. Mediation Effect
3.1.4. Moderation Effect
3.2. Variable
Control Variables
3.3. Data Source
4. Results
4.1. Fixed Regression Result
4.2. Robustness Test
4.3. Threshold Test
4.4. Mediation Effect Test
4.5. Moderation Effect Test
5. Conclusions
- AGT has significantly promoted the improvement of the health level of residents in China. With average life expectancy, average mortality rate, and maternal mortality rate serving as the explained variables, the same conclusion was reached.
- The impact of AGT on residents’ health depends on the level of regional economic development with a threshold effect. Compared with low-income areas, the health of residents in high-income areas is more affected by the positive effect of AGT.
- AGT can affect the health of local residents by affecting agricultural carbon emissions, which have an intermediary effect between AGT and residents’ health. In addition, the regional education level moderated the relationship between AGT and residents’ health.
- Promote the green transformation of agriculture: We should enhance the ability to protect and utilize agricultural resources and enhance the utilization rate of water resources; strengthen environmental protection in the agricultural industry and promote the reduction of chemical fertilizers and pesticides to increase efficiency; and improve the supply quality of green and high-quality agricultural products and drive the high-quality development of agriculture.
- Reasonable measures should be taken to reduce carbon emission: Emission reduction in agriculture is an important part of China’s carbon peak. We should increase the carbon sequestration of agricultural soil by using farm manure instead of chemical fertilizer; optimize the breeding structure, promote the combination of breeding and ecological health breeding technology, and improve the treatment rate and return rate of livestock and poultry manure; and develop the rural biomass energy industry, utilize waste resources to develop biomass energy, and continue to promote the green and low-carbon transformation of agriculture and high-quality development in rural areas.
- Strengthen the publicity of the relationship between agricultural green transmission and residents’ health: According to our conclusion, the green development of agriculture has positive significance for improving residents’ health. However, residents’ understanding of the relationship is still incomplete. Therefore, it is necessary to popularize the publicity of the effects of rational fertilization, reducing the use of pesticides and improving the use efficiency of cultivated land on the health of residents. Then, the residents would consciously integrate the concept of green agricultural development into their daily lives and ultimately achieve the virtuous cycle of the relationship between green development and residents’ health.
- Take more scientific and systematic measures to continuously improve the health of the people: The impact of agricultural green transformation on health is restricted by economic level, education level, and economic and social factors such as population aging and medical security. The complexity and diversity of health risk factors, including biological, physical, and social environment; health services; individual behavior and lifestyle factors; and the increasing trend of population aging, require more comprehensive and systematic measures to improve health. Government investment should lean towards medical and health services, and the supply of quality health products and services should be continuously increased. We should improve the implementation mechanism and guarantee mechanism of giving priority to health.
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Secondary Index | Three-Level Index | Meaning and Unit of the Indicator | Indicator Direction |
---|---|---|---|
Agricultural resource conservation | Arable land per capita | Arable land/Total population (ha/person) | + |
Multiple cropping index of cultivated land | Total sown area/Cultivated area of crops | − | |
Proportion of effective irrigated area | Available irrigated area/Cultivated area | + | |
Agricultural environmental control | Pesticide use per unit sown area | Pesticide use/Total sown area (kg/ha) | − |
Fertilizer use per unit sown area | Fertilizer application amount/Total planted area of crops (kg/ha) | − | |
Machinery input per unit of agricultural output value | Total power of agricultural machinery/Total agricultural output value (kW/CNY 1 million) | − | |
Amount of agricultural film per unit of agricultural output value | Agricultural film usage/Total agricultural output value (kg/CNY 10,000) | − | |
Agricultural production efficiency | Per capita agricultural output value | Total agricultural output value/Total number of agricultural employment (CNY 10,000/person) | + |
Per capita net operating income of rural residents | Average net income level of rural residents from business activities (CNY/person) | + |
Variable | Unit | Obs | Mean | Std. Dev. | Min | Max |
---|---|---|---|---|---|---|
ln AGT | 589 | 2.92 | 0.14 | 2.54 | 3.34 | |
Health1 | year | 589 | 74.89 | 3.69 | 64.37 | 82.55 |
Health2 | per 100,000 | 589 | 6.07 | 0.80 | 4.21 | 8.89 |
Health3 | per 100,000 | 589 | 27.13 | 37.70 | 1.10 | 401.40 |
ln GDP | CNY | 589 | 10.40 | 0.76 | 8.19 | 12.12 |
Old | 589 | 0.10 | 0.02 | 0.05 | 0.19 | |
Medical | per 1000 people | 589 | 5.43 | 2.08 | 1.79 | 15.46 |
ln Insurance | 10,000 people | 589 | 6.43 | 1.13 | 1.49 | 8.59 |
IS | % | 589 | 44.41 | 9.71 | 28.60 | 83.90 |
ln C | 589 | 5.73 | 1.26 | 2.10 | 7.24 | |
ln Edu | people | 589 | 7.68 | 0.43 | 6.21 | 8.84 |
(1) | (2) | (3) | (4) | (5) | (6) | |
---|---|---|---|---|---|---|
Health1 | Health1 | Health2 | Health2 | Health3 | Health3 | |
ln AGT | 0.0703 ** | 2.185 *** | −0.935 *** | −0.786 ** | −0.331 ** | −0.22 ** |
(0.7755) | (0.3214) | (0.2782) | (0.2878) | (0.2046) | (0.2192) | |
ln GDP | 2.783 *** | 1.721 *** | −0.0232 ** | −0.0821 * | −0.662 *** | −0.601 *** |
(0.2457) | (0.1637) | (0.0882) | (0.1466) | (0.0648) | (0.1116) | |
Old | −2.362 ** | −6.852 *** | 21.78 *** | 20.06 *** | 4.108 *** | 1.833 * |
(4.2102) | (1.9367) | (1.5106) | (1.7339) | (1.1108) | (1.3206) | |
Medical | 0.067 ** | 0.0189 * | 0.0885 *** | 0.0596 * | 0.0251 * | 0.0398 * |
(0.0634) | (0.0285) | (0.0227) | (0.0255) | (0.0167) | (0.0194) | |
ln Insurance | 0.780 * | 0.294 ** | −0.357 ** | −0.392 ** | −0.267 ** | −0.529 *** |
(0.3181) | (0.1558) | (0.1141) | (0.1395) | (0.0839) | (0.1062) | |
IS | 0.0247 | 0.0115 | −0.0538 | −0.0266 | 0.22 | −0.282 |
(0.0131) | (0.067) | (0.047) | (0.060) | (0.034) | (0.046) | |
Provincial effect | NO | YES | NO | YES | NO | YES |
Time effect | NO | YES | NO | YES | NO | YES |
_cons | 48.47 *** | 56.89 *** | 8.181 *** | 7.752 *** | 453.7 *** | 507.5 *** |
(2.5662) | (1.9902) | (0.9207) | (1.7818) | (36.5291) | (68.1261) | |
R-sq | 0.9266 | 0.9893 | 0.7992 | 0.817 | 0.9062 | 0.9083 |
N | 589 | 589 | 589 | 589 | 589 | 589 |
(1) Health2 | (2) Health2 | (3) Health2 | (4) Health2 | |
---|---|---|---|---|
ln Biogas | −0.102 *** | −0.121 *** | ||
(0.282) | (0.293) | |||
ln Solar | −1.830 *** | −0.112 * | ||
(0.975) | (0.665) | |||
Xij | NO | YES | NO | YES |
R-sq | 0.6315 | 0.7237 | 0.5534 | 0.8497 |
N | 589 | 589 | 589 | 589 |
First Stage | Second Stage | |
---|---|---|
ln AGT | −0.7984 *** | |
(7.48) | ||
ln Tel | 0.0471 ** | |
(9.68) | ||
Xij | YES | YES |
Cragg–Donald Wald F | 96.4823 (16.38) | |
K-Paap rk LM | 24.7562 *** | |
N | 589 | 589 |
R2 | 0.5266 | 0.6026 |
Explained | Threshold | p | F | Crit10 | Crit5 | Crit1 |
---|---|---|---|---|---|---|
Health1 | 9.698 | 0.0000 | 160.38 | 45.8953 | 54.3883 | 61.5585 |
Health2 | 10.989 | 0.0467 | 29.2 | 23.8762 | 28.8341 | 47.1706 |
Health3 | 9.499 | 0.0000 | 84.38 | 24.6017 | 28.5426 | 38.141 |
Health1 | Health2 | Health3 | |||
---|---|---|---|---|---|
ln GDP ≤ 9.698 | 1.702 ** | ln GDP ≤ 10.989 | −0.964 *** | ln GDP ≤ 9.499 | −0.303 ** |
(0.7392) | (0.2563) | (0.2053) | |||
ln GDP > 9.698 | 2.384 ** | ln GDP > 10.989 | −1.057 *** | ln GDP > 9.499 | −0.449 ** |
(0.7323) | (0.2552) | (0.2041) | |||
Xij | YES | Xij | YES | Xij | YES |
R-sq | 0.8489 | R-sq | 0.5463 | R-sq | 0.7393 |
Xij | YES | Xij | YES | Xij | YES |
(1) | (2) | (3) | (4) | (5) | (6) | (7) | (8) | (9) | |
---|---|---|---|---|---|---|---|---|---|
Health1 | ln C | Health1 | Health2 | ln C | Health2 | Health3 | ln C | Health3 | |
ln AGT | 0.3799 ** | −0.8099 ** | 0.3619 ** | −0.7524 *** | −0.8099 ** | −0.7049 *** | −0.2246 ** | −0.8099 ** | −0.2209 * |
(−0.8200) | (−2.3591) | (−0.8727) | (−4.3978) | (−2.3591) | (−4.0449) | (−1.6343) | (−2.3591) | (−1.6925) | |
ln C | −0.4209 *** | 0.0591 ** | 0.1227 *** | ||||||
(−4.0926) | (−2.4359) | (−3.8253) | |||||||
Xij | YES | YES | YES | YES | YES | YES | YES | YES | YES |
R-sq | 0.8728 | 0.3281 | 0.8765 | 0.5936 | 0.3281 | 0.6 | 0.6596 | 0.3281 | 0.6648 |
N | 589 | 589 | 589 | 589 | 589 | 589 | 589 | 589 | 589 |
(1) | (2) | (3) | (4) | (5) | (6) | |
---|---|---|---|---|---|---|
Health1 | Health1 | Health2 | Health2 | Health3 | Health3 | |
ln AGT | 12.0444 *** | 8.1695 ** | −1.3506 ** | −4.5468 ** | −6.2048 *** | −5.1276 ** |
(−3.2297) | (−2.3059) | (−0.4138) | (−1.5757) | (−2.7448) | (−2.2773) | |
ln Edu | 2.4611 * | 3.1016 ** | −1.1979 ** | −4.095 ** | −2.8571 *** | −4.7682 ** |
(−1.8496) | (−0.4711) | (−1.0285) | (−6.0057) | (−3.5423) | (−3.9774) | |
ln AGT × ln Edu | 1.2877 *** | 0.7704 ** | −0.2629 ** | −0.6820 ** | −0.8398 *** | −0.6817 ** |
(−2.726) | (−1.7096) | (−0.6358) | (−1.8581) | (−2.9329) | (−2.3803) | |
_cons | 97.1421 *** | 84.6214 *** | −0.9089 ** | −7.8619 ** | 24.5502 *** | 23.7176 *** |
(−9.2671) | (−8.3323) | (−0.0991) | (−0.9505) | (−3.8637) | (−3.6747) | |
Xij | NO | YES | NO | YES | NO | YES |
Time effect | YES | YES | YES | YES | YES | YES |
Provincial effect | YES | YES | YES | YES | YES | YES |
R-sq | 0.9844 | 0.9885 | 0.7689 | 0.8355 | 0.7813 | 0.8921 |
N | 589 | 589 | 589 | 589 | 589 | 589 |
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Feng, X.; Zheng, Y.; Yamaka, W.; Liu, J. How Does Agricultural Green Transformation Improve Residents’ Health? Empirical Evidence from China. Agriculture 2024, 14, 1085. https://doi.org/10.3390/agriculture14071085
Feng X, Zheng Y, Yamaka W, Liu J. How Does Agricultural Green Transformation Improve Residents’ Health? Empirical Evidence from China. Agriculture. 2024; 14(7):1085. https://doi.org/10.3390/agriculture14071085
Chicago/Turabian StyleFeng, Xiuju, Yunchen Zheng, Woraphon Yamaka, and Jianxu Liu. 2024. "How Does Agricultural Green Transformation Improve Residents’ Health? Empirical Evidence from China" Agriculture 14, no. 7: 1085. https://doi.org/10.3390/agriculture14071085
APA StyleFeng, X., Zheng, Y., Yamaka, W., & Liu, J. (2024). How Does Agricultural Green Transformation Improve Residents’ Health? Empirical Evidence from China. Agriculture, 14(7), 1085. https://doi.org/10.3390/agriculture14071085