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New benchmark ChartREG++ targets chart referring expression grounding

Researchers have introduced ChartREG++, a new benchmark designed to improve and evaluate the grounding of referring expressions in charts. This benchmark addresses limitations in existing datasets by supporting multiple localization forms, handling multi-instance targets, incorporating diverse grounding cues beyond simple text, and covering a wider array of chart types. The paper also presents a code-driven synthesis pipeline to generate pixel-accurate instance masks for training an instance segmentation model, which, when integrated into a multimodal grounding framework, demonstrates superior performance on the new benchmark and generalizes to other chart-grounding tasks. AI

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IMPACT Establishes a new standard for evaluating multimodal models on chart understanding, potentially driving improvements in visual grounding and reasoning capabilities.

RANK_REASON The cluster contains an academic paper introducing a new benchmark for a specific AI task. [lever_c_demoted from research: ic=1 ai=1.0]

Read on arXiv cs.CL →

COVERAGE [1]

  1. arXiv cs.CL TIER_1 · Wanxiang Che ·

    ChartREG++: Towards Benchmarking and Improving Chart Referring Expression Grounding under Diverse referring clues and Multi-Target Referring

    Referring expression grounding is a core problem in visual grounding and is widely used as a diagnostic of spatial grounding and reasoning in vision and language models, yet most prior work focuses on natural images. In contrast, existing chart referring expression grounding-rela…