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Genixer: Empowering Multimodal Large Language Models as a Powerful Data Generator
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Multimodal Large Language Models (MLLMs) demonstrate exceptional problem-solving capabilities, but few research studies aim to gauge the ability to generate visual instruction tuning data. This paper proposes to explore the potential of empowering MLLMs to generate data independently without relying on GPT-4. We introduce Genixer, a comprehensive data generation pipeline consisting of four key steps: (i) instruction data collection, (ii) instruction template design, (iii) empowering MLLMs, and (iv) data generation and filtering. Additionally, we outline two modes of data generation: task-agnostic and task-specific, enabling controllable output. We demonstrate that a synthetic VQA-like dataset trained with LLaVA1.5 enhances performance on 10 out of 12 multimodal benchmarks. Additionally, the grounding MLLM Shikra, when trained with a REC-like synthetic dataset, shows improvements on 7 out of 8 REC datasets. Through experiments and synthetic data analysis, our findings are: (1) current MLLMs can serve as robust data generators without assistance from GPT-4V; (2) MLLMs trained with task-specific datasets can surpass GPT-4V in generating complex instruction tuning data; (3) synthetic datasets enhance performance across various multimodal benchmarks and help mitigate model hallucinations. The data, code, and models can be found at https://github.com/zhaohengyuan1/Genixer.
Forward citations
Cited by 2 Pith papers
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A High-Quality Text-Rich Image Instruction Tuning Dataset via Hybrid Instruction Generation
A hybrid human/GPT-4o pipeline plus two new filtering scores produces a 424k-pair text-rich image instruction dataset that improves fine-tuned multimodal models on OCR and document understanding benchmarks.
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On Domain-Adaptive Post-Training for Multimodal Large Language Models
A generate-then-filter, open-source-only synthesis pipeline plus single-stage post-training consistently improves MLLM performance across biomedicine, food, and remote sensing.
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