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Article

Optimizing the Informal-to-Formal Recycling Transition: A Multi-Objective Decision-Support Framework for Urban Waste Governance

1
School of Management, Wuhan Institute of Technology, Wuhan 430205, China
2
School of Environmental Science and Engineering, Hubei Polytechnic University, Huangshi 435003, China
*
Authors to whom correspondence should be addressed.
Sustainability 2026, 18(17), 9106; https://doi.org/10.3390/su18179106
Submission received: 9 August 2026 / Revised: 26 August 2026 / Accepted: 31 August 2026 / Published: 4 September 2026

Abstract

The informal waste recycling sector provides livelihoods for roughly 0.2% of the urban population in developing economies, yet its formalization amid economic development creates trade-offs among social welfare, environmental performance, and fiscal sustainability. This study formulates the informal-to-formal recycling transition as a three-objective problem: minimizing the residual informal waste-picker headcount (an exit/displacement proxy rather than a measure of integration success), maximizing recycling rates, and minimizing government expenditure. We solve this problem with NSGA-II and SPEA2 on a stylized model whose parameters are calibrated for order-of-magnitude consistency with publicly documented Chinese municipal waste-management benchmarks, a directional sanity check rather than a formal parameter fit; each algorithm runs 30 times. SPEA2 attains a modestly higher hypervolume than NSGA-II (0.733 vs. 0.714; two-sided Mann–Whitney U rank test, p3×1011), and both algorithms converge within roughly 50 generations on this tractable two-variable problem. An unconstrained random search remains highly competitive, underscoring how readily this low-dimensional frontier can be approximated. The decision space comprises two policy levers, the formalization target α and the enforcement intensity E; a subsidy dimension is excluded because it would enter the fiscal objective only as a cost without a benefit channel. All fiscal values are expressed in abstract model currency units. A one-at-a-time sensitivity analysis identifies the formalization gain coefficient γ1 as the parameter with the highest hypervolume coefficient of variation (CV = 13.2%), pinpointing where empirical estimation effort matters most within this model. Scenario simulations under boom, recession, and transition conditions shift the Pareto frontier in distinct ways. A bi-objective ablation indicates that the three objectives are largely independent, since only a small share of bi-objective solutions is strictly dominated in the full three-objective space; a quantitative hidden-cost penalty is not established. A representative compromise strategy (α0.97, E0.33) reaches a 44.5% recycling rate with near-complete formalization at modest fiscal cost. The framework thus serves as a transparent, reproducible decision-support tool for urban waste governance in developing economies, making explicit the trade-offs that the model implements.
Keywords: multi-objective evolutionary optimization; informal waste recycling; NSGA-II; SPEA2; urban sustainability; waste picker livelihood; Pareto frontier multi-objective evolutionary optimization; informal waste recycling; NSGA-II; SPEA2; urban sustainability; waste picker livelihood; Pareto frontier

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MDPI and ACS Style

Zeng, X.; Wu, T.; Hu, J. Optimizing the Informal-to-Formal Recycling Transition: A Multi-Objective Decision-Support Framework for Urban Waste Governance. Sustainability 2026, 18, 9106. https://doi.org/10.3390/su18179106

AMA Style

Zeng X, Wu T, Hu J. Optimizing the Informal-to-Formal Recycling Transition: A Multi-Objective Decision-Support Framework for Urban Waste Governance. Sustainability. 2026; 18(17):9106. https://doi.org/10.3390/su18179106

Chicago/Turabian Style

Zeng, Xianya, Tianyong Wu, and Jiantuan Hu. 2026. "Optimizing the Informal-to-Formal Recycling Transition: A Multi-Objective Decision-Support Framework for Urban Waste Governance" Sustainability 18, no. 17: 9106. https://doi.org/10.3390/su18179106

APA Style

Zeng, X., Wu, T., & Hu, J. (2026). Optimizing the Informal-to-Formal Recycling Transition: A Multi-Objective Decision-Support Framework for Urban Waste Governance. Sustainability, 18(17), 9106. https://doi.org/10.3390/su18179106

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