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A Combined intPLUS and Emission-Linkage Framework for Provincial Carbon-Balance Projection

省レベル炭素収支予測のためのintPLUSと排出連関を統合したフレームワーク (AI 翻訳)

Ge Shi, Yue Wang, Jiantao Shi, C J Chen, Lin Sun, Wei Wang

Systems📚 査読済 / ジャーナル2026-07-21#炭素会計Origin: CN
DOI: 10.3390/systems14070872
原典: https://doi.org/10.3390/systems14070872
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🤖 gxceed AI 要約

日本語

本研究は、土地利用変化と社会経済活動を統合した省レベル炭素収支予測フレームワークを提案。江蘇省の13都市を対象に、1995〜2020年のデータと2030年の3シナリオで分析し、排出量の空間パターンと都市間の排出連関ネットワークを解明。シナリオ間で炭素収支に明確な差が生じることを示し、空間計画への示唆を提供。

English

This study proposes an integrated framework combining land-use simulation (intPLUS) and emission-linkage analysis to project provincial carbon balances. Applied to Jiangsu Province, China, it reveals spatial emission patterns and inter-city linkage networks, and shows divergent carbon budgets under three 2030 scenarios, offering insights for spatial planning.

Unofficial AI-generated summary based on the public title and abstract. Not an official translation.

📝 gxceed 編集解説 — Why this matters

日本のGX文脈において

日本では、SSBJ開示や自治体の脱炭素計画において、土地利用と排出の統合分析が求められる。本フレームワークは、地域の炭素収支を可視化し、計画策定に資する手法として参考になる。

In the global GX context

Globally, this framework addresses the gap between land-use change and emission accounting, relevant for subnational climate action planning. It demonstrates a transferable methodology for regions with available data, supporting integrated spatial and climate policy.

👥 読者別の含意

🔬研究者:Provides a novel integrated modeling approach for carbon balance projection, combining land-use simulation and emission linkage.

🏢実務担当者:Offers a practical tool for regional carbon budget assessment and spatial planning, though requires local recalibration.

🏛政策担当者:Highlights the importance of integrating land-use policies with emission reduction targets for effective regional climate strategies.

📄 Abstract(原文)

Regional carbon balance emerges from the complex interplay between land-use dynamics, spatial economic activities, and ecological processes as a socio-ecological system cannot be captured by any single analytical lens. This study develops an integrated assessment workflow that links three components: (i) coefficient-based carbon emission and sequestration accounting by land-use type; (ii) intra-provincial spatial-interaction analysis operationalized through two complementary tools—the Ecological Support Coefficient (ESC) and Economic Contribution Coefficient (ECC), which characterize the local economy–ecology relationship within each city, and a gravity-based emission-linkage model that uses GDP, population, emissions, and inter-city distance to characterize the network structure of inter-city emission attraction; and (iii) the intPLUS model, which combines random-forest-derived transition probabilities with patch-generation rules to simulate multi-scenario land-use trajectories. The framework is applied to Jiangsu Province, China, across 13 prefecture-level cities, using 1995–2020 historical data and three 2030 scenarios. Model performance is validated against observed 2020 land use, with an overall Kappa coefficient of 0.82. The results reveal a stable “high-south–low-north” gradient in emissions, a contrasting “high-ECC/low-ESC” versus “low-ECC/high-ESC” combining pattern across southern and northern Jiangsu, and a hierarchical core–periphery emission-linkage network anchored on the southern metropolitan cluster. Scenario projections for 2030 show clear divergence in provincial carbon budgets, with emissions of 12,326.59×104 t, 11,745.26×104 t, and 13,243.42×104 t under natural development, ecological protection, and economic development, respectively, and corresponding sequestration of −87.10×104 t, −100.29×104 t, and −85.61×104 t. Rather than treating carbon accounting and land-use simulation in isolation, this workflow bridges the analytical gap between physical land-use transitions and socioeconomic spatial emission spillovers, translating structural interactions into actionable spatial planning strategies. Relying on widely available data, the framework demonstrates strong methodological transferability for comparable subnational systems, provided that local parameters and sink coefficients are properly recalibrated.

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