AI Article Synopsis

  • Facial micro expressions are quick, involuntary displays of emotions that reveal a person's true feelings, even when they try to hide them.
  • Current detection methods are evolving, especially with approaches like the Lossless Attention Residual Network (LARNet), which focuses on key facial areas (nose, cheeks, mouth, and eyes) to improve accuracy in identifying these subtle expressions.
  • LARNet is shown to surpass existing techniques in detecting micro expressions in real-time and improves further with more annotated training data.

Article Abstract

Facial micro expressions are brief, spontaneous, and crucial emotions deep inside the mind, reflecting the actual thoughts for that moment. Humans can cover their emotions on a large scale, but their actual intentions and emotions can be extracted at a micro-level. Micro expressions are organic when compared with macro expressions, posing a challenge to both humans, as well as machines, to identify. In recent years, detection of facial expressions are widely used in commercial complexes, hotels, restaurants, psychology, security, offices, and education institutes. The aim and motivation of this paper are to provide an end-to-end architecture that accurately detects the actual expressions at the micro-scale features. However, the main research is to provide an analysis of the specific parts that are crucial for detecting the micro expressions from a face. Many states of the art approaches have been trained on the micro facial expressions and compared with our proposed Lossless Attention Residual Network (LARNet) approach. However, the main research on this is to provide analysis on the specific parts that are crucial for detecting the micro expressions from a face. Many CNN-based approaches extracts the features at local level which digs much deeper into the face pixels. However, the spatial and temporal information extracted from the face is encoded in LARNet for a feature fusion extraction on specific crucial locations, such as nose, cheeks, mouth, and eyes regions. LARNet outperforms the state-of-the-art methods with a slight margin by accurately detecting facial micro expressions in real-time. Lastly, the proposed LARNet becomes accurate and better by training with more annotated data.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7914525PMC
http://dx.doi.org/10.3390/s21041098DOI Listing

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