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MEGC2026: Micro-Expression Grand Challenge on Visual Question Answering

  • Xinqi Fan
  • , Jingting Li
  • , John See
  • , Moi Hoon Yap
  • , Su-Jing Wang
  • , Adrian K. Davison

Research output: Chapter in Book/Report/Conference proceedingConference contribution

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Abstract

Facial micro-expressions (MEs) are involuntary movements of the face that occur spontaneously when a person experiences an emotion but attempts to suppress or repress the facial expression, typically found in a high-stakes environment. In recent years, substantial advancements have been made in the areas of ME recognition, spotting, and generation. The emergence of multimodal large language models (MLLMs) and large vision-language models (LVLMs) offers promising new avenues for enhancing ME analysis through their powerful multimodal reasoning capabilities. The ME grand challenge (MEGC) 2026 introduces two tasks that reflect these evolving research directions: (1) ME video question answering (MEVQA), which explores ME understanding through visual question answering on relatively short video sequences, leveraging MLLMs or LVLMs to address diverse question types related to MEs; and (2) ME long-video question answering (ME-LVQA), which extends VQA to long-duration video sequences in realistic settings, requiring models to handle temporal reasoning and subtle ME spotting across extended time periods. More details are available at https://megc2026.github.io.
Original languageEnglish
Title of host publication20th IEEE International Conference on Automatic Face and Gesture Recognition (FG)
PublisherIEEE
ISBN (Electronic)9798331572310
DOIs
Publication statusPublished - 17 Jun 2026
Event20th IEEE International Conference on Automatic Face and Gesture Recognition 2026 - Kyoto, Japan
Duration: 25 May 202629 May 2026

Conference

Conference20th IEEE International Conference on Automatic Face and Gesture Recognition 2026
Abbreviated titleFG 2026
Country/TerritoryJapan
CityKyoto
Period25/05/2629/05/26

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