Manyun Long, Xuejie Shen, Tianqi Feng, Zhan Zhang, Yusheng Qin, Xiangxian Li, Xin Han, Lichao Lu, Zhen Cao, Xue Li, Xiaoxiao Li, Yang Luo, Jingkun Jiang, Wenqing Liu, Zehui Li
Malodorous compounds (MCs) feature ultra-low olfactory thresholds, episodic emissions and rapid dispersion, which complicate the analysis of their spatiotemporal behaviors and hinders real-time identification and spatial mapping of individual odorants in industrial park malodor management. Here, we developed a cost-effective sensor array network guided by source-specific emission fingerprints. The network, calibrated in situ using XGBoost models, achieved species-specific, real-time concentration mapping of multiple MCs across a 3 km2 industrial park. A standardized protocol integrating olfactory screening and multi-platform instrumental analysis identified trimethylamine, ethanethiol, hydrogen sulfide and ammonia as the dominant MCs. Dedicated sensor arrays were then constructed based on these source-specific signatures and calibrated in situ against co‑located Fourier transform infrared (FTIR) measurements. A high-density monitoring network of 42 monitors equipped with sensor arrays was established, acquiring data at 10-minute intervals. Real-time concentration mapping based on the monitoring network directly linked MCs to their respective sources. Validated by independent mobile FTIR measurements, the network localized hotspots with <150 m deviation. This source fingerprint-guided spatial monitoring network transforms odor management from a complaint-driven response to source-targeted precision monitoring, offering a paradigm for industrial environmental supervision.