RadarQA: Multi-modal Quality Analysis of Weather Radar Forecasts

LEI BAI (UNSW, Sydney) · Xuming He (ShanghaiTech University) · Wenlong Zhang (Shanghai Artificial Intelligence Laboratory) · Zhiyuan You · Junchao Gong (Shanghai Jiaotong University) · Couhua Liu (China Meteorological Administration) · Xiaoyu Yue (University of Sydney) · Peiqin Zhuang (Shanghai Artificial Intelligence Laboratory)
assessment reportsautomated heuristicshuman expert labelinghybrid annotation pipelinemodel performance improvementmulti-modal large language modelsmulti-modal quality analysismulti-stage training strategyphysical attributesradarqarating scenariosrqa-70k datasetsequence evaluationsingle frametask paradigmweather forecast analysis

Quality analysis of weather forecasts is an essential topic in meteorology. Although traditional score-based evaluation metrics can quantify certain forecast errors, they are still far from meteorological experts in terms of descriptive capability, interpretability, and understanding of dynamic evolution. With the rapid development of Multi-modal Large Language Models (MLLMs), these models become potential tools to overcome the above challenges. In this work, we introduce an MLLM-based weather forecast analysis method, RadarQA, integrating key physical attributes with detailed assessment reports. We introduce a novel and comprehensive task paradigm for multi-modal quality analysis, encompassing both single frame and sequence, under both rating and assessment scenarios. To support training and benchmarking, we design a hybrid annotation pipeline that combines human expert labeling with automated heuristics. With such an annotation method, we construct RQA-70K, a large-scale dataset with varying difficulty levels for radar forecast quality evaluation. We further design a multi-stage training strategy that iteratively improves model performance at each stage. Extensive experiments show that RadarQA outperforms existing general MLLMs across all evaluation settings, highlighting its potential for advancing quality analysis in weather prediction.