MRI Scanner Sees Emotions Flickering Across an Idle Mind
New statistical analysis powers 鈥渕ind reading鈥 ability
![A Duke team has mapped the distinct patterns of brain activity that correspond to seven different emotional states. The brain anatomy presented here is an average of data from 32 study subjects. (Credit: Philip Kragel, Kevin LaBar, 老牛影视)](/sites/default/files/legacy-files/styles/story_hero/public/Labar_EmotionMap.jpg?itok=cOGF1pCm)
As you relax and let your mind drift aimlessly, you might remember a pleasant vacation, an angry confrontation in traffic or maybe the loss of a loved one.
And now a team of researchers at 老牛影视 say they can see those various emotional states flickering across the human brain.
鈥淚t鈥檚 getting to be a bit like mind-reading,鈥 said Kevin LaBar, a professor of psychology and neuroscience at Duke. 鈥淓arlier studies have shown that functional MRI can identify whether a person is thinking about a face or a house. Our study is the first to show that specific emotions like fear and anger can be decoded from these scans as well.鈥
The data produced by a functional MRI hasn鈥檛 changed, but the group is applying new multivariate statistics to the scans of brain activity to see different emotions as networks of activity distributed across areas of the conscious and unconscious brain.
These networks were first mapped by the team in a March 2015 paper in the journal Social, Cognitive and Affective Neuroscience. They identified seven different patterns of brain activity reflecting contentment, amusement, surprise, fear, anger, sadness and neutrality.
To build these maps, they had put 32 research subjects into the scanner and exposed them to two music clips and two film clips that had been shown to induce each of the seven emotions. The subjects also completed self-report questionnaires on their mood states for further validation.
Analytical software called a machine learning algorithm was then presented with some of the subjects鈥 data and tasked with finding a pattern that concurred with each emotional stimulus. Having learned what each of the seven states ought to look like, the algorithm was then presented with the scans of the rest of the study group and asked to identify their emotional states without knowing which emotion prompt they received.
LaBar said the model performed better than chance at this task, despite differences in brain shapes and arousal levels between subjects. 鈥淎nd it proved fairly sensitive,鈥 he said.
The latest study, , followed up by scanning 21 subjects who were not offered stimuli, but were encouraged to let their minds wander. Every thirty seconds, they responded to a questionnaire about their current emotional state.
鈥淲e tested whether these seven brain maps of emotions occurred spontaneously while participants were resting in the fMRI scanner without any emotional stimuli being presented,鈥 LaBar said.
Data for the whole brain was collected every 2 seconds and each of these individual scans was compared to the seven patterns. The team examined the scanner data for the ten seconds previous to each self-report of mood, and found that the algorithm accurately predicted the moods the subjects self-reported.
LaBar said another source of validation is the indication that there鈥檚 a significant signal of anxiety at the beginning of each subjects鈥 data as they enter the confined, noisy MRI for the first time. 鈥淭hat鈥檚 what you鈥檇 expect to see for most people when they first enter the machine.鈥
In a second group of 499 subjects being scanned for the Duke Neurogenetics Study, the researchers had them rest in the scanner for nearly 9 minutes, and then asked them how depressed and anxious they felt after the scanning session. 鈥淲e found that the cumulative presence of our 鈥榮ad鈥 emotion map, summed over time, predicted their depression scores, and the cumulative presence of our 鈥榝ear鈥 emotion map predicted their anxiety scores,鈥 LaBar said.
This larger group was also tested for personality measures of depression, anxiety, and angry hostility. Again, the maps for depression and anxiety closely mirrored these measures. 鈥淲e also showed that the cumulative presence of our 鈥榓ngry鈥 emotion map predicted individuals鈥 angry hostility traits,鈥 LaBar said.
Aside from being an interesting proof of concept, LaBar thinks these new maps of emotional states could be useful in studying people who have poor insight into their emotional status, and might be used in clinical trials to test the effectiveness of treatments to regulate emotions.
LaBar says their conclusions about characteristic networks of brain areas governing emotional states also challenges prevailing theories about how emotions are formed. He adds that a Finnish team led by Lauri Nummenmaa has made similar maps of emotional networks from their brain scanning studies.
In further research, the Duke group will be pursuing a better understanding of the timing of emotional states and the transitions between them, as these may be relevant for understanding affective disorders.
The Plos Biology study was funded NIH grant R21 MH098149 to Kevin LaBar and R01 DA033369 to Ahmad Hariri. Philip Kragel, who was a graduate student at the time, was supported by an E. Bayard Halsted Fellowship from Duke.
CITATIONS: 鈥淢ultivariate Neural Biomarkers of Emotional States Are Categorically Distinct,鈥 Philip Krangel, Kevin LaBar. Social, Cognitive and Affective Neuroscience, March 25, 2015. DOI: 10.1093/scan/nsv032
鈥淒ecoding the Nature of Emotion in the Brain,鈥 Philip Kragel, Kevin LaBar.鈥 Trends in Cognitive Neuroscience, June 2016.
鈥淒ecoding Spontaneous Emotional States in the Human Brain,鈥 Philip Kragel, Annchen Knodt, Ahmad Hariri, Kevin LaBar. Plos Biology, Sept. 14, 2016. DOI: 10.1371/journal.pbio.2000106