Who performs better? The heterogeneity of grain production eco-efficiency
Evidence from unsupervised machine learning
Dados Bibliográficos
| ID | 11368308 |
|---|---|
| Autores | Hanjie Wang (0000-0001-9400-814X), Wang Hanjie (Southwest University), Jiali Han (0000-0001-5478-8663, Southwest University of Political Science & Law, autor correspondente), Xiaohua Yu (0000-0003-4257-8081, University of Göttingen, autor correspondente) |
| Ano | 2024 |
| Volume | 106 |
| Páginas | 107530 |
| Data de publicação | 2024-05-01 |
| Peer Reviewed | Sim |
| Open Access | Sim |
| Tipo | ARTICLE |
| Periódico | Environmental Impact Assessment Review (JOURNAL) |
| Identificadores do periódico | ISSN: 0195-9255 • E-ISSN: 1873-6432 |
| Editora | Elsevier BV (PUBLISHER) |
| DOI | 10.1016/j.eiar.2024.107530 |
| OpenAlex | W4396764074 |
| Idioma | EN |
| Citações recebidas | 5 |
| Referências citadas | 51 |
This study contributes to the existing literature by providing evidence for the microheterogeneity of agricultural eco-efficiency with machine learning techniques. Using the comprehensive dataset from the “China Rural Revitalization Survey” (CRRS), we employ unsupervised machine learning via the K-means clustering algorithm to dissect the heterogeneity of grain production eco-efficiency from the perspective of farmers. Our findings reveal the classification of grain producers into three distinctive groups: large-scale farmers, conventional self-sufficiency farmers, and novel smallholders. Notably, while large-scale farmers exhibit high grain production volumes, they concurrently generate substantial carbon emissions, reflecting the lowest level of eco-efficiency. Conversely, the novel smallholders emerge as a promising policy inclination due to their superior eco-efficiency, while conventional self-sufficiency farmers exhibit relatively lower eco-efficiency levels. Consequently, we argue that improving grain production eco-efficiency should fully consider the heterogeneity of millions of producers. Overall, this study provides a new perspective that enriches our understanding of the heterogeneity of grain production eco-efficiency, which is crucial for enhancing the effectiveness of policy interventions
Economics · Machine learning · Microeconomics · Production (economics · Computer Science · Efficiency Analysis Using DEA · Energy, Environment, Economic Growth · Environmental Impact and Sustainability · Artificial Intelligence
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| Obras citantes distintas | 5 |
|---|---|
| Citações por ano | 5 |
| Intervalo de citações | 2025 - 2026 (2) |
| Velocidade de citação | current |
| Altamente citado | Não |
| Tipos de citação | Neutras: 5 |