用生成式人工智能分析债换自然中的全球利用率和错失的机会

Nataliya Tkachenko, Simon Frieder, Ryan-Rhys Griffiths, Christoph Nedopil
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引用次数: 0

摘要

我们采用了一个及时增强的 GPT-4 模型,提炼出了有关全球应用债换自然(DNS)的综合数据集,这是一种用于环境保护的重要金融工具。我们的分析包括 195 个国家,发现 21 个尚未使用过债换自然的国家是债换自然的主要候选国。其中很大一部分国家表现出对环境保护融资的一贯承诺(与历史互换记录相比,准确率达到 0.86)。相反,有 35 个在 2010 年之前曾积极参与 DNS 的国家后来被认定为不适合 DNS。值得注意的是,阿根廷正努力应对飙升的通货膨胀和严重的主权债务危机,而波兰则实现了经济稳定,并获得了欧盟保护基金的替代资金,这些国家都是适宜性不断变化的典范。研究结果表明,在经济和政治动荡的情况下,DNS 作为一种保护战略是脆弱的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analyzing global utilization and missed opportunities in debt-for-nature swaps with generative AI
We deploy a prompt-augmented GPT-4 model to distill comprehensive datasets on the global application of debt-for-nature swaps (DNS), a pivotal financial tool for environmental conservation. Our analysis includes 195 nations and identifies 21 countries that have not yet used DNS before as prime candidates for DNS. A significant proportion demonstrates consistent commitments to conservation finance (0.86 accuracy as compared to historical swaps records). Conversely, 35 countries previously active in DNS before 2010 have since been identified as unsuitable. Notably, Argentina, grappling with soaring inflation and a substantial sovereign debt crisis, and Poland, which has achieved economic stability and gained access to alternative EU conservation funds, exemplify the shifting suitability landscape. The study's outcomes illuminate the fragility of DNS as a conservation strategy amid economic and political volatility.
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