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Papers/Frontiers in Intelligent Colonoscopy

Frontiers in Intelligent Colonoscopy

Ge-Peng Ji, Jingyi Liu, Peng Xu, Nick Barnes, Fahad Shahbaz Khan, Salman Khan, Deng-Ping Fan

2024-10-22Image ClassificationReferring expression generationReferring Expression ComprehensionImage CaptioningVisual Question Answering (VQA)
PaperPDFCode(official)

Abstract

Colonoscopy is currently one of the most sensitive screening methods for colorectal cancer. This study investigates the frontiers of intelligent colonoscopy techniques and their prospective implications for multimodal medical applications. With this goal, we begin by assessing the current data-centric and model-centric landscapes through four tasks for colonoscopic scene perception, including classification, detection, segmentation, and vision-language understanding. This assessment enables us to identify domain-specific challenges and reveals that multimodal research in colonoscopy remains open for further exploration. To embrace the coming multimodal era, we establish three foundational initiatives: a large-scale multimodal instruction tuning dataset ColonINST, a colonoscopy-designed multimodal language model ColonGPT, and a multimodal benchmark. To facilitate ongoing monitoring of this rapidly evolving field, we provide a public website for the latest updates: https://github.com/ai4colonoscopy/IntelliScope.

Results

TaskDatasetMetricValueModel
Image ClassificationColonINST-v1 (Seen)Accuray94.06ColonGPT (w/ LoRA, w/o extra data)
Image ClassificationColonINST-v1 (Unseen)Accuray83.24ColonGPT (w/ LoRA, w/o extra data)
Referring expression generationColonINST-v1 (Unseen)Accuray80.18ColonGPT (w/ LoRA, w/o extra data)
Referring expression generationColonINST-v1 (Seen)Accuray99.96ColonGPT (w/ LoRA, w/o extra data)

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