Papers by Onno Kampman

2 papers
Investigating Audio, Video, and Text Fusion Methods for End-to-End Automatic Personality Prediction (P18-2)

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Challenge: Using stacked Convolutional Neural Networks, we can predict personality traits from video clips with different channels for audio, text, and video data.
Approach: They propose a tri-modal architecture to predict Big Five personality trait scores from video clips with different channels for audio, text, and video data.
Outcome: The proposed model outperforms the best individual modality with 9.4% accuracy over the best channel.
SEACrowd: A Multilingual Multimodal Data Hub and Benchmark Suite for Southeast Asian Languages (2024.emnlp-main)

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Challenge: Southeast Asia (SEA) is home to over 1,300 indigenous languages and 671 million people . prevailing AI models suffer from a significant lack of representation of texts, images, and audio datasets from SEA .
Approach: They propose to provide a resource center that provides standardized corpora in nearly 1,000 SEA languages across three modalities.
Outcome: a new benchmark assesses the quality of AI models on 36 SEA languages across 13 tasks . the results highlight the importance of SEA as a culturally diverse region .

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