Eyes Wide Shut? Exploring the Visual Shortcomings of Multimodal LLMs
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Eyes Wide Shut? Exploring the Visual Shortcomings of Multimodal LLMs

2024-01-26
Is vision good enough for language? Recent advancements in multimodal models primarily stem from the powerful reasoning abilities of large language models (LLMs). However, the visual component typically depends only on the instance-level contrastive language-image pre-training (CLIP). Our research reveals that the visual capabilities in recent multimodal LLMs (MLLMs) still exhibit systematic shortcomings. To understand the roots of these errors, we explore the gap between the visual embedding space of...
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