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5 months ago

Honeybee: Locality-enhanced Projector for Multimodal LLM

Junbum Cha; Wooyoung Kang; Jonghwan Mun; Byungseok Roh

Honeybee: Locality-enhanced Projector for Multimodal LLM

Abstract

In Multimodal Large Language Models (MLLMs), a visual projector plays a crucial role in bridging pre-trained vision encoders with LLMs, enabling profound visual understanding while harnessing the LLMs' robust capabilities. Despite the importance of the visual projector, it has been relatively less explored. In this study, we first identify two essential projector properties: (i) flexibility in managing the number of visual tokens, crucial for MLLMs' overall efficiency, and (ii) preservation of local context from visual features, vital for spatial understanding. Based on these findings, we propose a novel projector design that is both flexible and locality-enhanced, effectively satisfying the two desirable properties. Additionally, we present comprehensive strategies to effectively utilize multiple and multifaceted instruction datasets. Through extensive experiments, we examine the impact of individual design choices. Finally, our proposed MLLM, Honeybee, remarkably outperforms previous state-of-the-art methods across various benchmarks, including MME, MMBench, SEED-Bench, and LLaVA-Bench, achieving significantly higher efficiency. Code and models are available at https://github.com/kakaobrain/honeybee.

Code Repositories

kakaobrain/honeybee
Official
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
science-question-answering-on-scienceqaHoneybee
Avg. Accuracy: 94.39
Grades 1-6: 95.04
Grades 7-12: 93.21
Image Context: 93.75
Language Science: 91.18
Natural Science: 95.20
No Context: 93.17
Social Science: 96.29
Text Context: 94.48

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Honeybee: Locality-enhanced Projector for Multimodal LLM | Papers | HyperAI