Search Results for author: Bjorn Schuller

Found 4 papers, 0 papers with code

Multi-modal Active Learning From Human Data: A Deep Reinforcement Learning Approach

no code implementations7 Jun 2019 Ognjen Rudovic, Meiru Zhang, Bjorn Schuller, Rosalind W. Picard

Human behavior expression and experience are inherently multi-modal, and characterized by vast individual and contextual heterogeneity.

Active Learning reinforcement-learning +1

SEWA DB: A Rich Database for Audio-Visual Emotion and Sentiment Research in the Wild

no code implementations9 Jan 2019 Jean Kossaifi, Robert Walecki, Yannis Panagakis, Jie Shen, Maximilian Schmitt, Fabien Ringeval, Jing Han, Vedhas Pandit, Antoine Toisoul, Bjorn Schuller, Kam Star, Elnar Hajiyev, Maja Pantic

Natural human-computer interaction and audio-visual human behaviour sensing systems, which would achieve robust performance in-the-wild are more needed than ever as digital devices are increasingly becoming an indispensable part of our life.

Personalized Machine Learning for Robot Perception of Affect and Engagement in Autism Therapy

no code implementations4 Feb 2018 Ognjen Rudovic, Jaeryoung Lee, Miles Dai, Bjorn Schuller, Rosalind Picard

To tackle the heterogeneity in behavioral cues of children with autism, we use the latest advances in deep learning to formulate a personalized machine learning (ML) framework for automatic perception of the childrens affective states and engagement during robot-assisted autism therapy.

BIG-bench Machine Learning

AVEC 2016 - Depression, Mood, and Emotion Recognition Workshop and Challenge

no code implementations5 May 2016 Michel Valstar, Jonathan Gratch, Bjorn Schuller, Fabien Ringeval, Denis Lalanne, Mercedes Torres Torres, Stefan Scherer, Guiota Stratou, Roddy Cowie, Maja Pantic

The Audio/Visual Emotion Challenge and Workshop (AVEC 2016) "Depression, Mood and Emotion" will be the sixth competition event aimed at comparison of multimedia processing and machine learning methods for automatic audio, visual and physiological depression and emotion analysis, with all participants competing under strictly the same conditions.

Emotion Recognition

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