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Enterprise AI Analysis: JSynFlow: Japanese Synthesised Flowchart Visual Question Answering Dataset built with Large Language Models

AI RESEARCH

JSynFlow: Japanese Synthesised Flowchart Visual Question Answering Dataset built with Large Language Models

Vision and language models (VLMs) are expected to analyse complex documents, such as those containing flowcharts, through a question-answering (QA) interface. This paper introduces 'JSynFlow', a synthesised visual QA dataset for Japanese flowcharts, generated using large language models (LLMs), demonstrating that fine-tuning with JSynFlow significantly improves VLM performance on flowchart-based QA tasks.

Executive Impact & Key Findings

JSynFlow significantly improves VLM performance on flowchart-based QA tasks, demonstrating the effectiveness of LLM-generated synthetic data for complex document understanding and accelerating AI development.

1,511 Total Tasks Generated
11,137 Total QA Pairs Generated
12.9% Avg. BERTScore F1 Improvement

Deep Analysis & Enterprise Applications

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Performance Boost

12.8% Average BERTScore F1 Improvement with JSynFlow

JSynFlow Dataset Generation Process

Generate Task Lists
Generate Task Procedures
Generate Flowcharts (DSL Code)
Generate QA Pairs

VLM Performance with JSynFlow Fine-tuning (BERTScore F1)

Model Baseline F1 JSynFlow F1 Improvement (%)
LLaVA-JP 0.6605 0.7691 +16.4%
Qwen2-VL 0.8597 0.9397 +9.3%

Advancing VLM Capabilities with JSynFlow

The JSynFlow dataset directly addresses the scarcity of high-quality, large-scale Japanese flowchart VQA data. By leveraging Large Language Models (LLMs) for synthesis, it enables efficient creation of diverse flowchart images, DSL code, and detailed QA pairs. This synthetic data proves highly effective in fine-tuning Vision-and-Language Models (VLMs), leading to significant performance improvements in understanding complex visual information within documents. This breakthrough accelerates the development of more robust and accurate AI systems for document analysis and knowledge extraction.

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Estimated Annual Savings $0
Hours Reclaimed Annually 0

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