Submitted:
02 February 2026
Posted:
03 February 2026
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Abstract
Keywords:
1. Introduction
2. Literature Review
2.1. The Concept and Measurement of Farmers’ Perception on Climate Change
2.2. Climate Change Adaptation Measures
2.3. The Impact of Climate Change Perception on Farmers' Adoption of Adaptation Measures
3. Data Source and Sample Description
3.1. Description of Baicheng City's Climate Characteristics
3.2. Data Source
3.3. Sample Description
4. Empirical Analysis
4.1. Model Specification
4.2. Variable Definition and Description
4.3. Empirical Results
4.4. Robustness Test
5. Conclusions and Discussion
5.1. Conclusions
5.2. Discussion
5.3. Recommendations
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Year | Event | Significance |
|---|---|---|
| 1930s | the oxen mutual cooperative insurance in He County, Anhui Province in 1934 and the Beibei Livestock Insurance Society in Chongqing in 1939 | the earliest practice of agricultural insurance in China |
| 2004 | the Central Document No. 1 explicitly called for the first time to “accelerate the establishment of a policy-based agricultural insurance system” | address the slow development of agricultural insurance |
| 2007 | the central government officially launched a pilot program for agricultural insurance premium subsidies | enter a phase of rapid policy-driven development |
| 2013 | implementation of the Regulations on Agricultural Insurance | enter the path of standardized and law-based development |
| 2019 | issuance of the “Guiding Opinions on Accelerating the High-Quality Development of Agricultural Insurance” | clarify the direction for high-quality development of agricultural insurance |
| Year | Drought (10,000 hectares) | Flooding (10,000 hectares) | hail damage (10,000 hectares) |
|---|---|---|---|
| 2023 | 0.0 | 22.8 | 3.3 |
| 2022 | 0.0 | 16.7 | 2.6 |
| 2021 | 4.4 | 11.6 | 8.4 |
| 2020 | 12.7 | 4.0 | 7.0 |
| 2019 | - | 28.6 | 12.5 |
| 2018 | 109.9 | 1.7 | 16.3 |
| 2017 | 62.5 | 44.9 | 13.3 |
| 2016 | 52.4 | 7.1 | 6.1 |
| 2015 | 70.0 | 2.4 | 12.2 |
| 2014 | 182.7 | 2.4 | 8.9 |
| 2013 | - | 47.2 | 19.8 |
| 2012 | 30.4 | 7.0 | 5.2 |
| County | Town | Sample | Percentage |
|---|---|---|---|
| Da'an City | Chagan Town | 3 | 6.52 |
| Shaoguo Town | 27 | ||
| Taobei District | Daobao Town | 14 | 8.91 |
| Lingxia Town | 27 | ||
| Taonan District | Dongsheng Village | 37 | 31.74 |
| Anding Town | 23 | ||
| Wafang Town | 22 | ||
| Treasure Village | 8 | ||
| Najin Town | 54 | ||
| Wild Horse Village | 2 | ||
| Tongyu County | Wulanhua Town | 58 | 38.7 |
| Shuanggang Town | 3 | ||
| Xinxing Village | 61 | ||
| Xinhua Town | 20 | ||
| Zhanyu Town | 26 | ||
| Hongxing Town | 10 | ||
| Zhenlai County | Jianping Town | 25 | 14.13 |
| Zhenlai Town | 12 | ||
| Heiyupao Town | 28 | ||
| Total | 460 | 100 |
| Characteristics | Category | Sample | Percentage |
|---|---|---|---|
| Household Head Gender | Male | 453 | 98.48 |
| Female | 7 | 1.52 | |
| Age | 15–34 years old | 43 | 9.35 |
| 35–59 years old | 367 | 79.78 | |
| 60 years old and above | 50 | 10.87 | |
| Education | Illiterate | 12 | 2.61 |
| Elementary School | 177 | 38.48 | |
| Junior high school | 217 | 47.17 | |
| High school and above | 54 | 11.74 | |
| Number of household members | 1-3 person | 268 | 58.26 |
| 4-6 person | 189 | 41.09 | |
| 7-9 person | 3 | 0.65 | |
| Total household income | 0–30,000 yuan | 97 | 21.23 |
| 30,000–60,000 yuan | 96 | 21.00 | |
| 60,000–90,000 yuan | 87 | 19.04 | |
| 90,000 yuan and above | 177 | 38.73 | |
| Year | 2018 | 233 | 50.65 |
| 2019 | 227 | 49.35 |
| Variable Name |
Variable Definition |
Variable Characteristics |
Mean | SD | Min | Max | VIF |
|---|---|---|---|---|---|---|---|
| Insurance | Whether to purchase agricultural insurance | Categorical variable, 1=Yes, 0=No | 0.39 | 0.488 | 0.00 | 1.00 | — |
| Temperature | Perception of average annual temperature changes over the past five years | Categorical variable, -1 = decrease; 0 = unchanged; 1 = increase | 0.41 | 0.840 | -1.00 | 1.00 | 1.17 |
| Precipitation | Perception of average annual precipitation changes over the past five years | Categorical variable, -1 = decrease; 0 = unchanged; 1 = increase | -0.27 | 0.895 | -1.00 | 1.00 | 1.94 |
| Drought | Perception of drought severity over the past five years | Categorical variable, -1 = alleviated; 0 = unchanged; 1 = aggravated | 0.43 | 0.836 | -1.00 | 1.00 | 1.98 |
| Frost | Perception of frost severity over the past five years | Categorical variable, -1 = alleviated; 0 = unchanged; 1 = aggravated | 0.05 | 0.878 | -1.00 | 1.00 | 1.32 |
| Age | age | Actual variable, actual age (unit: years) | 48.27 | 9.574 | 21.00 | 74.00 | 1.30 |
| Education | Level of education | Actual variable, 0 = illiterate, 6 = elementary school, 9 = junior high school, 12 = high school and above (unit: years) | 7.96 | 2.360 | 0.00 | 12.00 | 1.06 |
| Population | Number of family members | Actual variable, actual number of people (unit: persons) | 3.46 | 1.138 | 1.00 | 8.00 | 1.25 |
| Income | Total household income | Actual variable, the logarithm of total household income | 11.09 | 1.158 | 7.40 | 15.42 | 1.30 |
| Proportion | The proportion of cultivated land used for planting food legumes | Actual variable, actual proportion (unit: %) | 0.41 | 0.603 | 0.01 | 11.25 | 1.06 |
| Cooperative | Whether to join the food legumes production cooperative | Categorical variable, 1=Yes, 0=No | 0.32 | 0.466 | 0.00 | 1.00 | 1.23 |
| Experience | Whether to experience a yield reduction | Categorical variable, 1=Yes, 0=No | 0.74 | 0.441 | 0.00 | 1.00 | 1.05 |
| (1) | (2) | (3) | (4) | |
|---|---|---|---|---|
| Insurance | Insurance | Insurance | Marginal Effect | |
| Temperature | -0.3260*** | -0.2922*** | -0.2178** | -0.0578** |
| (0.0810) | (0.0815) | (0.0899) | (0.0237) | |
| Precipitation | 0.0717 | 0.0226 | 0.1581 | 0.0436 |
| (0.1016) | (0.1031) | (0.1150) | (0.0313) | |
| Drought | 0.0298 | 0.0051 | 0.0169 | 0.0142 |
| (0.1139) | (0.1169) | (0.1266) | (0.0333) | |
| Frost | 0.8211*** | 0.8137*** | 0.6894*** | 0.182*** |
| (0.0849) | (0.0872) | (0.0937) | (0.0239) | |
| Age | -0.0057 | -0.0052 | -0.00163 | |
| (0.0077) | (0.0082) | (0.00173) | ||
| Education | -0.0088 | -0.0207 | -0.00525 | |
| (0.0327) | (0.0319) | (0.00801) | ||
| Population | 0.1859*** | 0.1070 | 0.0321** | |
| (0.0676) | (0.0694) | (0.0156) | ||
| Income | 0.0476 | 0.0144 | -0.000495 | |
| (0.0642) | (0.0729) | (0.0149) | ||
| Proportion | -0.2763 | -0.00719 | ||
| (0.3251) | (0.0119) | |||
| Cooperative | 1.3179*** | 0.401*** | ||
| (0.1650) | (0.0495) | |||
| Experience | 0.5026*** | 0.118*** | ||
| (0.1665) | (0.0357) | |||
| Constant | -0.2964*** | -1.1474 | -1.1566 | |
| (0.0875) | (0.9990) | (1.0900) | ||
| N | 460 | 457 | 457 | |
| chi2 | 132.2149 | 138.5215 | 179.2103 | |
| r2_p | 0.2582 | 0.2835 | 0.4158 |
| (5) | (6) | (7) | (8) | |
|---|---|---|---|---|
| Perception of | Probit Model |
Logit Model |
OLS Model |
Replace Explanatory Variables |
| Temperature | -0.2178** | -0.3928** | -0.0578** | -0.2136** |
| (0.0899) | (0.1592) | (0.0237) | (0.0895) | |
| Precipitation | 0.1581 | 0.2707 | 0.0436 | 0.1870* |
| (0.1150) | (0.2074) | (0.0313) | (0.1111) | |
| Drought | 0.0169 | 0.0388 | 0.0142 | |
| (0.1266) | (0.2287) | (0.0333) | ||
| Frost | 0.6894*** | 1.2145*** | 0.1815*** | |
| (0.0937) | (0.1703) | (0.0239) | ||
| Drought_2 | 0.0931 | |||
| (0.1232) | ||||
| Frost_2 | 0.6424*** | |||
| (0.0952) | ||||
| Age | -0.0052 | -0.0127 | -0.0016 | -0.0045 |
| (0.0082) | (0.0145) | (0.0017) | (0.0082) | |
| Education | -0.0207 | -0.0345 | -0.0053 | -0.0253 |
| (0.0319) | (0.0579) | (0.0080) | (0.0320) | |
| Population | 0.1070 | 0.1973 | 0.0321** | 0.1079 |
| (0.0694) | (0.1240) | (0.0156) | (0.0692) | |
| Income | 0.0144 | -0.0141 | -0.0005 | 0.0278 |
| (0.0729) | (0.1315) | (0.0149) | (0.0739) | |
| Proportion | -0.2763 | -0.5101 | -0.0072 | -0.2561 |
| (0.3251) | (0.5772) | (0.0119) | (0.3156) | |
| Cooperative | 1.3179*** | 2.2701*** | 0.4006*** | 1.3212*** |
| (0.1650) | (0.3009) | (0.0495) | (0.1650) | |
| Experience | 0.5026*** | 0.8295*** | 0.1183*** | 0.4917*** |
| (0.1665) | (0.2993) | (0.0357) | (0.1654) | |
| Constant | -1.1566 | -1.3904 | 0.2145 | -1.2876 |
| (1.0900) | (1.9410) | (0.2177) | (1.1130) | |
| N | 457 | 457 | 457 | 457 |
| chi2 | 179.2103 | 139.4261 | 170.3134 | |
| r2_p | 0.4158 | 0.4148 | 0.4076 |
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