Towards a Child-specific Outdoor Thermal Comfort Index for Tropical Environments: A Numerical Proof of Concept

Nouvêwa Patrice Maximilien Boko *

Pierre PAGNEY Laboratory: Climate, Water, Ecosystems and Development (LACEEDE), Université d'Abomey-Calavi, Abomey-Calavi, Benin.

*Author to whom correspondence should be addressed.


Abstract

Background: Outdoor thermal comfort indices are predominantly based on adult physiological models, although children differ in body geometry, activity patterns, exposure height, and age-related thermoregulatory characteristics.

Aims: To establish a transparent, field-oriented biophysical architecture and numerical proof of concept for assessing outdoor thermal comfort in children, shifting focus from adult-based models to child-specific microclimatic exposure in tropical environments.

Study Design: Numerical modeling and algorithmic stress-testing using a structured synthetic matrix of theoretical microclimatic scenarios.

Place and Duration of Study: Pierre PAGNEY Laboratory: Climate, Water, Ecosystems and Development (LACEEDE), Université d'Abomey-Calavi, Benin, between 2025 and 2026.

Methodology: The study constructed a structured synthetic matrix comprising 720 independent simulated situations to evaluate a prototype algorithm across four age classes (0–12 years), three child-height microclimatic measurement heights, four surface types, three activity levels, and five shading/ventilation configurations. Performance metrics including Root Mean Square Error (RMSE), pseudo-R², and categorical classification accuracy were computed against the internal theoretical response structure.

Results: The internal evaluation of the synthetic proof-of-concept matrix yielded a pseudo-R² of 0.68, an RMSE of 0.68 scale points, and a categorical classification accuracy of 76%. The prototype successfully captured near-ground thermal gradients and surface material impacts on children's simulated heat balance without relying on uncalibrated adult coefficients.

Conclusion: The proposed biophysical framework serves as a rigorous numerical foundation and prospective decision-support tool rather than an empirical population-validated index. A detailed 6-phase empirical validation roadmap is established to guide future field data collection, external validation, and necessary paediatric ethical safeguards.

Keywords: Child biometeorology, paediatric thermal comfort, outdoor thermal comfort, tropical microclimate, child-height exposure, mean radiant temperature, heat balance, playground microclimate, thermal stress, schoolyards


How to Cite

Boko, Nouvêwa Patrice Maximilien. 2026. “Towards a Child-Specific Outdoor Thermal Comfort Index for Tropical Environments: A Numerical Proof of Concept”. International Journal of Environment and Climate Change 16 (9):623-34. https://doi.org/10.9734/ijecc/2026/v16i95682.

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