Showing posts with label music. Show all posts
Showing posts with label music. Show all posts

Friday, February 2, 2018

People with dementia need ‘universal access to music’

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https://www.artsprofessional.co.uk/news/people-dementia-need-universal-access-music-report-says?utm_source=Weekly-News&utm_medium=email&utm_content=nid-207532&utm_campaign=2nd-February-2018


People with dementia need ‘universal access to music’, report says

New research finds listening to music helps tackle anxiety, depression and agitation among people living with dementia, and calls for a dedicated music and dementia task force.
Photo: 
NCVO London CC BY 2.0

The potential of music to empower and soothe people living with dementia has been outlined in a new report, which calls for increased collaboration between politicians, technology companies, arts organisations and the healthcare sector to make access to the artform easier.
The evidence roundup, produced by independent think tank the International Longevity Centre (ILC-UK), concludes music can help minimise agitation, depression and other symptoms of dementia, whilst helping to increase social interaction.
It also finds evidence of a “memory bump”, in that people with dementia retain the clearest memories for music they enjoyed and heard between the ages of 10 and 30.
The report authors use the conclusions to urge music streaming services such as Spotify to offer limitless streaming to people with dementia at reduced prices or for free. They also urge the Government to create an independent, non-political Ambassador for Dementia and Music, who would lead a dedicated task force to deliver “universal access to music” for people with dementia.
“People with dementia often live in a silent world, yet music can bring a person back to life,” said Neil Utley of the Utley Foundation, one of the funders of the research.
“The ability to connect to music is an innate aspect of being human; having a diagnosis of dementia need not undermine this.”

Growing concern

Produced by ILC-UK’s Commission on Dementia and Music, the report examines the existing offer and the future potential for using therapeutic music with dementia.
The number of people living with dementia is expected to reach one million by 2025, and many of these will suffer neuropsychiatric symptoms, such as agitation, depression, apathy and anxiety. The annual cost of dementia to the UK is £26.3bn and this is expected to exceed £50bn over the next three decades.
The researchers conclude music and dementia is currently the terrain of devoted advocates operating in a “complex and poorly coordinated ecosystem”. They found specialist music therapy provision is “sporadic” and estimate that good-quality arts and music provision is currently available in just 5% of care homes.
“We want to see provision reaching all people with dementia, including the most vulnerable individuals who may not have family or friends to speak on their behalf,” the authors add.

Recommendations

The report concludes the sector would benefit from increased funding, which should be supported by more research into the cost effectiveness of such programmes – recognising the tight budgets of local authorities and clinical commissioning groups – and more investment from philanthropic trusts.
It also calls for a large-scale campaign to raise awareness of the value of music interventions, and a national database to summarise local provision for people living with dementia.
Sally Bowell, Research Fellow at ILC-UK, added: “Music should not just be considered a nice-to-have, or an ‘add-on’. Music has tangible, evidence-based benefits for people with dementia, such as helping to minimise the behavioural and psychological symptoms of dementia, tackling depression and anxiety, and, importantly, helping to improve quality of life.
“We want to raise awareness of these important benefits and rally organisations and individuals alike to help champion access to music for people with dementia.”
Author(s): 

Friday, March 10, 2017

Infographic: Mapping Musicality

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Infographic: Mapping Musicality

Huge areas of the brain respond to any sort of auditory stimulus, making it difficult for scientists to nail down regions that are important for music processing.
By  | March 1, 2017
© CATHERINE DELPHIAFunctional magnetic resonance imaging (fMRI) studies have taken diverse approaches to pinpointing areas involved in musical perception, providing “musical” stimuli ranging from human singing to synthesized piano melodies and other computer-generated sounds, and yielding equally varied results. Despite these hurdles, research is beginning to offer some clues about the regions of the brain involved in musical perception.

Music specificity

Based on Cortex, 59:126-37, 2014
Music activates diverse areas of the brain, from the primary auditory cortex to the amygdala. But the degree to which certain areas are specifically geared to processing music, as opposed to other sounds, is unclear. By comparing activation patterns in the brain while people listened to nonmusical human vocalizations, such as speech or laughter, or to instrumental music, researchers found that certain regions responded more strongly to one type of auditory stimulus than the other. For example, parts of the superior temporal gyrus (STG), the superior temporal sulcus (STS), and the inferior frontal gyrus (IFG) showed stronger responses to vocalizations than to music (orange), while other areas such as the planum polare (part of the anterior STG) showed stronger responses to music than to vocalizations (blue).

Beat and pitch

Based on Cereb Cortex, 24:836-43, 2014 and Philos Trans R Soc Lond B Biol Sci, 370:20140093, 2015 (left); Front Psychol, 3:76, 2012 (right)
Some fMRI studies have focused on identifying the brain circuitry underlying specific components of auditory perception. For example, the primary auditory cortex (located in the STG) and the thalamus are thought to play prominent roles in beat perception for both music and speech, and trained musicians may recruit extra language-processing areas such as the supramarginal gyrus (SMG) when listening to complex rhythms. In addition, several regions considered to be part of the motor system have been associated with beat perception, including the supplementary motor area (SMA) and the premotor cortex (PMC), suggesting an important link between perceiving a rhythm and synchronizing movement to it.
Studies of pitch processing, meanwhile, have repeatedly highlighted a role for the auditory cortex, although evidence for the overlap between speech and music in this and other areas is mixed. Some regions, however, including the intraparietal sulcus (IPS, located on the parietal lobe), appear to be activated more by pitch in sung words than by pitch in spoken words. Additional observations revealed differential lateralized activity for song and speech: the left inferior frontal gyrus (IFG), for example, dominates in pitch processing for speech, while the right IFG takes over for song.
Read the full story.

Understanding the Roots of Human Musicality

Researchers are using multiple methods to study the origins of humans’ capacity to process and produce music, and there’s no shortage of debate about the results.
By  | March 1, 2017
22954
© ISTOCK.COM/LIUDMYLA SUPNYSKAGetting to Santa María, Bolivia, is no easy feat. Home to a farming and foraging society, the village is located deep in the Amazon rainforest and is accessible only by river. The area lacks electricity and running water, and the Tsimane’ people who live there make contact with the outside world only occasionally, during trips to neighboring towns. But for auditory researcher Josh McDermott, this remoteness was central to the community’s scientific appeal.
In 2015, the MIT scientist loaded a laptop, headphones, and a gasoline generator into a canoe and pushed off from the Amazonian town of San Borja, some 50 kilometers downriver from Santa María. Together with collaborator Ricardo Godoy, an anthropologist at Brandeis University, McDermott planned to carry out experiments to test whether the Tsimane’ could discern certain combinations of musical tones, and whether they preferred some over others. The pair wanted to address a long-standing question in music research: Are the features of musical perception seen across cultures innate, or do similarities in preferences observed around the world mirror the spread of Western culture and its (much-better-studied) music?
“Particular musical intervals are used in Western music and in other cultures,” McDermott says. “They don’t appear to be random—some are used more commonly than others. The question is: What’s the explanation for that?”
TSIMANE’ TESTS: Ricardo Godoy of Brandeis University tests the musical preferences of a Tsimane’ woman in Santa María, Bolivia.JOSH MCDERMOTTEthnomusicologists and composers have tended to favor the idea that these musical tendencies are entirely the product of culture. But in recent years, scientific interest in the evolutionary basis for humans’ musicality—our capacity to process and produce music—has been on the rise. With it has come growing enthusiasm for the idea that our preference for consonant intervals—tonal combinations considered pleasant to Western ears, such as a perfect fifth or a major third—over less pleasant-sounding, dissonant ones is hardwired into our biology. As people with minimal exposure to Western influence, the Tsimane’ offered a novel opportunity to explore these ideas.
If these properties are absent in some cultures, they can’t be strictly determined by something in the biology.—Josh McDermott, MIT
Making use of the basic auditory equipment they’d brought by canoe, McDermott and his colleagues carried out a series of tests to investigate how members of this community responded to various sounds and musical patterns. The team found that although the Tsimane’ could distinguish consonance from dissonance, they apparently had no preference for one over the other. McDermott interprets the results as evidence against a strong biological basis for preference.1 “If these properties are absent in some cultures, they can’t be strictly determined by something in the biology—on the assumption that the biology in these people is the same as it is in us,” he says.
But the authors’ publication of their results proved controversial. While some took the findings to imply that culture, not biology, is responsible for people’s musical preferences, others argued that the dichotomy was a false one. Just because there’s variation in perception, it doesn’t mean there’s no biological basis, says Tecumseh Fitch, an evolutionary biologist and cognitive scientist at the University of Vienna. “Almost everything has a biological basis and an environmental and cultural dimension,” he says. “The idea that those are in conflict with one another, this ‘nature versus nurture,’ is just one of the most consistently unhelpful ideas in biology.”
Identifying the biological and cultural influences on humans’ musicality is one of various thorny issues that researchers working on the cognitive science of music are currently tackling. The field has exploded in recent years, and while many answers have yet to materialize, “the questions have been clarified,” says Fitch, who was one of more than 20 authors contributing to a special issue of Philosophical Transactions B on the subject in 2015. For example, “rather than talking about the evolution of music, we’re talking now about the evolution of musicality—a general trait of our species. That avoids a lot of confusion.”
Researchers are beginning to break this trait into various components such as pitch processing and beat synchronization (see Glossary); addressing the function and evolution of each of these tasks could inform the broader question of where humans’ musicality came from. But as illustrated by the discussions following McDermott’s recent publication, it’s clear just how much remains mysterious about the biological origins of this trait. So for now, the debates continue.

A mind for music?

MAPPING MUSIC: Huge areas of the brain respond to any sort of auditory stimulus, making it difficult for scientists to nail down regions that are important specifically for music processing. Functional magnetic resonance imaging (fMRI) studies have taken diverse approaches to pinpointing areas involved in musical perception, providing “musical” stimuli ranging from human singing to synthesized piano melodies and other computer-generated sounds, and yielding equally varied results. Despite these hurdles, research is beginning to offer some clues about the regions of the brain involved in musical perception.
See full infographic: WEB | PDF
© CATHERINE DELPHIA
Musical faculties don’t fossilize, so there’s little direct evidence of our musical past (see Time Signatures). But researchers may find clues in the much older study of another complex cognitive trait: speech perception. “Music and language are both sound ordered in time; they both have hierarchical structure; they’re in all cultures; and they’re very complex human activities,” says Fred Lerdahl, a composer and music theorist at Columbia University. “A lot of people, including me, think that music and language have, in some respects, a common origin.”
Numerous lines of evidence have supported this view. For example, Tufts University psychologist Ani Patel and colleagues showed a few years ago that patients with congenital amusia, a neurodevelopmental disorder of musical perception commonly known as tone deafness, also had difficulty perceiving intonation in speech.2(See “Caterwauling for Science.”) And fMRI scans of normally hearing volunteers listening to recordings have revealed that large areas of the brain’s temporal lobes—regions involved in auditory processing—show heightened activation in response to both music and speech, compared with nonvocal sounds or silence.3 For many, these findings hint at the possibility of common neural circuitry for the processing of speech and music.
But other research points to dissociated processing for at least some components of music and language, suggesting that certain parts of the brain specialized in musicality during our evolution. Lesion studies, for example, show that brain damage can disrupt the processing of pitch in music without disrupting pitch processing in speech.4 And multivariate neuroimaging analyses with higher sensitivity than traditional methods indicate that, despite stimulating overlapping regions of the cortex, recordings of music and speech activate different neural networks.5“People may take localization of activity as evidence for sharing,” notes Isabelle Peretz, a neuropsychologist at the University of Montreal. But given the low resolution of most current methods, “that’s nonsense, of course.”
McDermott’s lab recently reported more extreme dissociation. Using a novel approach to analyze fMRI data from people listening to more than 150 recordings of speech, music, nonverbal vocalizations, or nonvocal sounds, the team identified anatomically distinct pathways in the auditory cortex for speech and for music, along with other regions of the brain that responded selectively to each.6 “We find that they’re largely anatomically segregated,” McDermott says. “Speech selectivity seems to be located primarily lateral to primary auditory cortex, while music [selectivity] is localized mostly anterior to it.”
The neural processing mechanisms themselves remain elusive, but studies like McDermott’s “clearly demonstrate that you can separate the representations for speech and music,” says Peretz. All the same, she notes, with current research continuing to present evidence both for and against a shared neural basis for music and speech perception, “the debate is still on.”
Another way researchers hope to throw more light on how the human brain has become tuned for musical perception is by looking at people’s DNA. “For me, [genetics] is the only way to study the evolutionary roots of musicality,” says Irma Järvelä, a medical geneticist at the University of Helsinki. In recent years, Järvelä’s group has researched genome-wide association patterns in Finnish families. In a preliminary study published last year, the team used standard music-listening tests to characterize participants as having either high or low musical aptitude, and identified at least 46 genomic regions associated with this variation.7 “We asked, what are the genes in these regions, and are these genes related to auditory perception?” she explains. In addition to homologs of genes associated with song processing and production in songbirds, the researchers identified genes previously linked with language development and hearing.
Further clues about musicality’s genetic basis could come from the study of amusia. In 2007, Peretz and colleagues reported that congenital amusia runs in families.8 And recent descriptions of high amusia incidence in patients with genetic diseases such as Williams-Beuren syndrome, a condition associated with deletion of up to 28 genes on chromosome 7, may lead researchers to additional musicality-linked genes.9 “We are making progress along these lines, but there’s a lot more to be done,” says Peretz. “It’s really hard to do, and more expensive than neuroimaging. So we have to be patient.” But it’s progress worth waiting for, she adds, as an understanding of the genetics contributing to particular musical—or amusical—phenotypes could offer an entirely new perspective on the biological basis for musicality.
Music’s universality in humans, combined with its fundamental social and cultural roles, is convincing evidence to some that our musicality is adaptive.
Meanwhile, some researchers advocate looking to related species to answer questions about the origins of human musicality. Although nonhuman primates share our ability to distinguish between consonance and dissonance, many apes and monkeys have surprisingly different auditory processing. “Things that are fundamental to music that people thought would be ancient, general aspects of how animals process sound turn out not to be, and potentially reflect specialization in our brains,” says Patel. For example, the ability to synchronize movement to a beat, a capacity central to music, “doesn’t come naturally to our closest living relatives,” says Patel, though he adds that “it does come quite naturally to some other species,” including parrots, seals, and elephants. (See “John Iversen: Brain Beats.”)
Similarly, vocal learning—potentially a requirement for musicality—is known to be prevalent in several taxa, including some species of songbirds, parrots, whales, seals, bats, and elephants, but it is not well documented in any primate other than humans. (See “Singing in the Brain.”) “It raises the question of why,” Patel says. “What basic features of music perception are shared with other species, and what does that tell us about the evolution of those features?”

Why music?

© ISTOCK.COM/PEOPLEIMAGESAs researchers continue to probe how humans have evolved to process music, many scientists, and the public, have been increasingly drawn to another question concerning musicality’s origins: Why did it evolve at all? For some, music’s universality in humans, combined with its fundamental social and cultural roles, is persuasive evidence that our musicality is adaptive. “Music is so common in all societies,” says Helsinki’s Järvelä. “There must be favorable alleles; it must be beneficial to humans.”
But just what this benefit might be, and whether it did indeed influence our evolution, have been the objects of what Patel calls “one of the oldest debates in the book.” In the late 1990s, cognitive psychologist Steven Pinker famously dubbed music “auditory cheesecake”—pleasant, but hardly essential—and argued that musicality was nothing more than a by-product of neural circuitry evolved to process language and other auditory inputs. It’s become the argument to beat for researchers looking for ultimate explanations of musicality’s evolution in humans, Fitch says. “Everybody seems to want to prove that Pinker’s cheesecake argument is wrong,” he notes. “But it’s just the null hypothesis.”
One adaptationist viewpoint, that traces its roots to Darwin, is that human musicality, like birdsong, is a sexually selected trait—albeit an unusual one, prevalent as it is in both sexes. Musicality is a reliable and visible indicator of cognitive ability, the argument goes, and so informs a potential mate of an individual’s genetic quality. Some researchers have tried to generate testable predictions from this idea, but so far there’s been little evidence in its favor. One recent study went as far as assessing the self-reported sexual success—based on indicators including the number of sex partners and age at first intercourse—of more than 10,000 pairs of Swedish twins.10 The researchers found no association between musical ability and sexual success, but cautioned against being quick to draw conclusions about the sexual relationships of our evolutionary ancestors from modern society.
Other hypotheses arise from research on music’s far more complex and still poorly understood effects on human emotion and social bonding. University of Toronto psychologist Sandra Trehub notes, for example, that babies and young children are particularly sensitive to musical communication, and that singing comes naturally to adults interacting with them. “Caregivers around the world sing to infants,” she says. “It’s not a Western phenomenon, nor a class-based phenomenon. It seems to be important for caregiving everywhere.”
She and her colleagues recently showed that recordings of singing, more so than speech, could delay the time it took for an infant to become distressed when unable to see another person.11 And in 2014, research led by Laurel Trainor at McMaster University found that when babies just over a year old were bounced to music, they became more helpful towards a researcher standing opposite them who had been bopping along in rhythm (handing back “accidentally” dropped objects) than to people who had been bouncing asynchronously.12
Are musical tendencies the prod­uct of culture, or have they evolved along with our abilities to produce and process music?
These and related findings have led some to propose that parent-infant bonding, or? social cohesion in general, provided a selective pressure that favored the evolution of musicality in early humans, though Trehub herself says she does not subscribe to this rather speculative view. “I have no difficulty imagining a time when music-like things would have been very important in communicating global notions and managing interpersonal relationships,” she says. “But it’s pretty hard, based on anything we look at now, to relate it to conditions in ancient times and the functions it would have served.”
Indeed, the inherent challenge of studying ancient hominin behavior, combined with the complexity of the trait itself, makes explanations for musicality’s evolution particularly vulnerable to “just-so” stories, says Trainor. “When you look at the effect that music has on people, it’s easy to think it must have been an evolutionary adaption. Of course, it’s very difficult, if not impossible, to prove that something is an evolutionary adaption.”
This intractability has led some researchers to view adaptation-based lines of inquiry into human musicality as something of a distraction. “I don’t think it’s a particularly useful question at all,” says Fitch. “It’s an unhealthy preoccupation, given how little we know.” Others have argued for a subtler view of musicality’s evolution that avoids the search for simple answers. “The evolutionary process isn’t a one-shot thing,” says Trainor. “It has many nuanced stages.”
Her work, for example, addresses how aspects of auditory scene analysis—the process by which animals locate the source of sounds in space—could have led to features currently viewed as critical for musicality in modern humans. But that doesn’t mean that music didn’t provide its own benefits once it arose. “I think parts of the long road to our becoming musical beings were driven by evolutionary pressures [for music itself],” says Trainor, “and other parts of it were driven by evolutionary pressures for things other than music that music now uses.”
But most researchers agree that understanding our musical evolution will require studying musicality in more-focused and biologically relevant ways. For example, instead of asking why musicality evolved, Fitch suggests researchers investigate why humans evolved to synchronize their movements to a beat. This approach “is what’s really important,” says Patel. “We’ve had hundreds of years of speculation. Now, I think, the real advances are being made by thinking about the individual components of music cognition and looking at them in an evolutionary framework.” 
© SASCHA SCHUERMANN/AFP/GETTY IMAGES; © ISTOCK.COM/ANGEALWithout physical evidence of ancient humans’ musical perception, researchers look for signs of our capacity to produce music to approximate the timescale of musicality’s evolution. One way to do this is through archaeology. The oldest undisputed musical instruments are bone flutes (pictured at right) found in caves in Germany that have been dated as more than 40,000 years old (J Hum Evo, 62:664-76, 2012). But many researchers argue that the use of the voice as an instrument likely came much earlier than that.
To put an upper limit on the age of vocal musicality, some have turned to human anatomy. Producing complex vocalizations requires both a powerful brain and specialized vocal machinery. During hominin evolution, for example, the thorax become more innervated, a change that allowed humans (and Neanderthals) to more effectively control the pitch and intensity in their vocalizations. The fossil record indicates that the first hominins with breath control like ours lived a maximum of 1.6 million years ago, which some suggest marks the first time our lineage would have been physically capable of producing vocalizations resembling singing (Am J Phys Anthropol, 109:341-63, 1999).
Genetics might also help researchers pin down when certain components of musicality appeared in our ancestors, if parts of our DNA can be linked to our capacity for perceiving and processing music. For now, however, the question of when humans first produced something we might recognize as music remains open to speculation.

References

  1. J.H. McDermott et al., “Indifference to dissonance in native Amazonians reveals cultural variation in music perception,” Nature, 535:547-50, 2016.
  2. F. Liu et al., “Intonation processing in congenital amusia: Discrimination, identification and imitation,” Brain, 133:1682-93, 2010.
  3. I. Peretz et al., “Neural overlap in processing music and speech,” Philos Trans R Soc B, doi:10.1098/rstb.2014.0090, 2015.
  4. I. Peretz et al., “Functional dissociations following bilateral lesions of auditory cortex,” Brain, 117: 1283–1301, 1994.
  5. C. Rogalsky et al., “Functional anatomy of language and music perception: Temporal and structural factors investigated using functional magnetic resonance imaging,” J Neurosci, 31:3843-52, 2011.
  6. S. Norman-Haignere et al., “Distinct cortical pathways for music and speech revealed by hypothesis-free voxel decomposition,” Neuron, 88:1281-96, 2015.
  7. X. Liu et al., “Detecting signatures of positive selection associated with musical aptitude in the human genome,” Sci Rep, 6:21198, 2016.
  8. I. Peretz et al., “The genetics of congenital amusia (tone deafness): A family-aggregation study,” Am J Hum Genet, 81:582-88, 2007.
  9. M.D. Lense et al., “(A)musicality in Williams syndrome: Examining relationships among auditory perception, musical skill, and emotional responsiveness to music,” Front Psychol, 4:525, 2013.
  10. M.A. Mosling et al., “Did sexual selection shape human music? Testing predictions from the sexual selection hypothesis of music evolution using a large genetically informative sample of over 10,000 twins,” Evol Hum Behav, 36:359-66, 2015.
  11. M. Corbeil et al., “Singing delays the onset of infant distress,” Infancy, 21:373-91, 2015.
  12. L.K. Cirelli et al., “Interpersonal synchrony increases prosocial behavior in infants,” Dev Sci, 17:1003-11, 2014.

Monday, December 12, 2016

You May Not Have Rhythm, But Your Eyeballs Sure Do

reposted from



 Keeping you current

You May Not Have Rhythm, But Your Eyeballs Sure Do

Tracking eye movement gives researchers a peek into how the brain reacts to music

image: http://thumbs.media.smithsonianmag.com//filer/72/5e/725e8c74-5ab0-4609-b322-b3a33a7738f4/10297570764_7f183a933b_b.jpg__800x600_q85_crop.jpg
Eyeball
(Alyssa Zoe via Flickr)
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Not everyone can tap out a beat, but new research suggests that everyone has a drummer hiding deep inside the recesses of their nervous systems. According to a new study, scientists studying how humans process information have found evidence that indicates our brains can pick up on rhythmic patterns, even when we’re not paying attention to the music.
In a new study published in the journal Brain and Cognition, researchers from the University of Groningen in the Netherlands sat 20 psychology students in front of a computer and had them complete a task involving pressing the spacebar on a keyboard as fast as they could. But that was just a distraction—the real test had to do with the music the researchers were piping into the room and the response from the students’ eyes.
"The perception of music is a complex interaction between what we hear and our interpretation," the researchers write in the study. "This is reflected in beat perception, in which a listener infers a regular pulse from a musical rhythm."
Throughout the test, the researchers played one of several audio clips that sounded like drum rhythms you might hear in a pop or rock tune. Several of the songs, however, left out particular beats throughout the clip: some were missing a bass note here or there, others were missing hi-hat clicks. Meanwhile, a camera trained on the subject’s eyes recorded the movement of their pupils in order to see how they responded to the missing beats.
Because people can’t consciously control how big their pupils get, studying this movement can help shed light on how we perceive the world. For instance, in this study, the researchers found that even when the subjects were ignoring the music, their pupils would get larger when a beat was dropped. In addition, they found that the subjects’ eyes reacted differently when different beats were missing—a missing bass note played on a beat would provoke a bigger reaction than a missing syncopated hi-hat tap, for example. According to the study, that suggests that people not only have a basic sense of rhythm, but they can distinguish between more important notes on an unconscious level.
“People have very little control over their pupillary response,” Bruno Gingras, a researcher at the University of Innsbruck’s Institute of Psychology, who was not involved with this study, tells Smithsonian.com. “People have used other methods to show that people react if they hear a surprising chord, or a surprising note. But so far it has not really been shown with pupillary dilation.”
In recent years, scientists have begun looking to pupillary movement to glean new insights into the brain. While they have long known that pupil size and movement is an unconscious reaction to stimuli like light and sound, it was only once cameras and software became sensitive enough that researchers were able to start thinking about the eyes as a window into the recesses of our brains.
“Physiologic signals in general are quite noisy,” Gingras’ research partner Manuela Marin, who was also not involved with this study, tells Smithsonian.com. “Even if you have other autonomic nervous system measures, like skin conductance, you need very good technology to show the effects.”
Pupillary movement, on the other hand, is pretty obvious. After all, with a simple camera, researchers can gauge a person’s unconscious reaction to something just by tracking how big their pupils get, even as they perform another task.
While Gingras and Marin say this study presents some intriguing evidence for humans having an innate sense of rhythm, it would be interesting to see how professional musicians would respond to a similar test. They suspect that musical training and knowledge could spark a much stronger reaction to changes in rhythms and musical patterns than a psychology student who may not have spent as much time studying music in the same way. Applying this technique to different groups of people could help paint a more nuanced picture of how deeply ingrained music is in our unconscious minds.



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