Burkholderia glumae in rice: Climate-driven epidemiology, advanced detection techniques and AI-enhanced predictive forecasting models
Hamood U Rehman,
Norida Mazlan,
Siti Izera Ismail and
Nur Azura Husin
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Hamood U Rehman: Department of Agriculture Technology, Faculty of Agriculture, Universiti Putra Malaysia, Selangor, Malaysia
Norida Mazlan: Department of Agriculture Technology, Faculty of Agriculture, Universiti Putra Malaysia, Selangor, Malaysia
Siti Izera Ismail: Department of Plant Protection, Faculty of Agriculture, Universiti Putra Malaysia, Selangor, Malaysia
Plant Protection Science, vol. preprint
Abstract:
Bacterial panicle blight (BPB), caused by Burkholderia glumae, is a major and rising threat to global rice production. Its severity is heightened by climate change, with outbreaks driven by high temperatures and humidity during the vulnerable flowering stage. Current management is hampered by delayed detection and a disconnect between diagnostic tools and predictive models. This review synthesises advances across climatology, molecular biology, and computational agriculture to address this gap. We analyse climate-driven disease dynamics, precise molecular diagnostics, and the emergence of AI for real-time image-based detection and weather-based forecasting. The novel contribution of this work is the proposal of an Integrated Multimodal AI Framework (IMAF) that converges these domains. The IMAF links climate modelling, sensor data, and computer vision to enable proactive, climate-resilient disease forecasting and decision support. This synthesis represents a critical paradigm shift from reactive management to intelligent, predictive intervention. We conclude with a roadmap for developing and deploying such integrated systems to enhance global rice resilience.
Keywords: BPB prediction; artificial intelligence in agriculture; plant pathogen forecasting; sustainable rice production (search for similar items in EconPapers)
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Persistent link: https://EconPapers.repec.org/RePEc:caa:jnlpps:v:preprint:id:33-2025-pps
DOI: 10.17221/33/2025-PPS
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