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Published:2025/8/22 19:39:02

VLMの文化力チェック! 多モーダルストーリーでAIを評価💅✨

超要約: VLM(画像と文章を理解するAI)の文化的な表現力を、お話作りでチェックする研究だよ!

✨ ギャル的キラキラポイント ✨ ● AIの文化的な理解度を、お話作りで測っちゃう斬新さ💖 ● 色んなVLM(AIモデル)の個性が分かっちゃう! ● AIが文化的に正しい表現をするためのヒントが満載💎

詳細解説いくよ~!

背景 AIさん、どんどん賢くなってるけど、文化的な違いはまだ苦手なのよね💦 例えば、同じ「お祝い」でも、国によってお祝いの仕方は全然違うじゃん? この研究は、AIが色んな文化をちゃんと理解して、文化的に正しい表現ができるか試すものなの!

続きは「らくらく論文」アプリで

Toward Socially Aware Vision-Language Models: Evaluating Cultural Competence Through Multimodal Story Generation

Arka Mukherjee / Shreya Ghosh

As Vision-Language Models (VLMs) achieve widespread deployment across diverse cultural contexts, ensuring their cultural competence becomes critical for responsible AI systems. While prior work has evaluated cultural awareness in text-only models and VLM object recognition tasks, no research has systematically assessed how VLMs adapt outputs when cultural identity cues are embedded in both textual prompts and visual inputs during generative tasks. We present the first comprehensive evaluation of VLM cultural competence through multimodal story generation, developing a novel multimodal framework that perturbs cultural identity and evaluates 5 contemporary VLMs on a downstream task: story generation. Our analysis reveals significant cultural adaptation capabilities, with rich culturally-specific vocabulary spanning names, familial terms, and geographic markers. However, we uncover concerning limitations: cultural competence varies dramatically across architectures, some models exhibit inverse cultural alignment, and automated metrics show architectural bias contradicting human assessments. Cross-modal evaluation shows that culturally distinct outputs are indeed detectable through visual-semantic similarity (28.7% within-nationality vs. 0.2% cross-nationality recall), yet visual-cultural understanding remains limited. In essence, we establish the promise and challenges of cultural competence in multimodal AI. We publicly release our codebase and data: https://github.com/ArkaMukherjee0/mmCultural

cs / cs.CL / cs.CY