Playing different sports is rather redundant. Think about the motor skills and objects of, say, hockey versus soccer. Players on two teams try to keep control of the puck/ball and put it past the opposing keeper into the goal. Tennis, badminton and volleyball share the concept of hitting an object over a net at an opponent. Football and rugby both need to advance a ball across a goal line. There are similar objects such as a ball, a goal and the field of play and movements like jumping and running. An athlete’s brain needs to learn these shared concepts early on to be able to navigate the tactics and motor skills required for different sports. Now, neuroscientists may have discovered how our brains organize this overlapping information so we don’t need to relearn the basics of each new sport.
Think about when you started driving. While you may have been taught in one particular car, you learned the more general concepts of driving and how to identify the common objects found in dozens of vehicles. Within seconds of sitting in a different car, you can recognize the steering wheel, ignition switch, pedals, lights, not to mention the basic mechanical functions of making it move.
Neuroscience has traditionally explained this ability to recognize objects by localizing it only to the visual cortex, a specific area of the brain. Now, neuroresearcher Alex Huth of the University of California – Berkeley and his team have discovered that these different categories of objects are actually represented over a larger overlapping space in the brain in the somatosensory and frontal cortices covering almost 20% of the brain.
From the same visual system modeling lab that brought us a mind-reading computer last year, Huth used a similar technique of watching the brains of five researcher volunteers while they watched two hours of movie trailers. Using fMRI scanning, the roughly 30,000 locations, also known as voxels, in the cortex were recorded while seeing over 1,700 different categories of objects and actions from the clips.
By matching the electrical pattern in the subjects’ brains with the scenes they were watching, a “semantic space” map was created showing which areas of the brain were active when seeing certain objects or actions. As seen in the image above, categories that light up the same pattern in the brain are colored the same. For example, focus on the middle of this image and you’ll see a green section that identifies human actors, including athletes. Each small leaf on each branch represents one of the 1,700 different object or action types, which is not an exhaustive list of things in our world but a good cross section.
“Our methods open a door that will quickly lead to a more complete and detailed understanding of how the brain is organized. Already, our online brain viewer appears to provide the most detailed look ever at the visual function and organization of a single human brain,” said Huth.
Indeed, that online brain viewer is a fascinating tool. By choosing an object such as “athlete” or an action such as “kicking” on one side of the viewer, you can see the corresponding layout of brain topology that is used to visualize it.
“Using the semantic space as a visualization tool, we immediately saw that categories are represented in these incredibly intricate maps that cover much more of the brain than we expected,” Huth said.
By studying the semantic map, we can see the shared properties of athletic endeavours. The athlete cluster includes “ballplayer”, “skater” and “climber.” Interestingly, a cluster called “move self”, (including actions such as reach, jump and grab), uses a separate brain network then a more general grouping called “move” (including actions of pull, drop and reach). From a skill practice perspective, the idea of a concept neighborhood makes sense as other research has shown the transferability of movements and logic from one sport to another.
In case you were wondering, vehicles do have their own semantic group including everything from a moped to a pickup to a locomotive.
As the old saying goes, “you can’t coach height”, but, according to researchers at the University of South Australia, you can recruit and develop key skills beyond genetic gifts. That was their conclusion after interviewing 90 elite basketball coaches from around the world, including men and women from major college programs and professional teams from the NCAA, NBA, WNBA, and 10 other international leagues.
"Game statistics are commonly used to recruit basketball players but by watching players on the court, and how they behave outside of it, coaches can pick up a lot of non-physical factors that indicate whether a player is likely to make the grade,” said Michael Rogers, a PhD student in the university’s Allied Health and Human Performance program and lead author of the study.
With team training now resume for many leagues around the world, athletes are increasing their physical fitness levels back up to in-season form. Well-known data metrics, like heart rate, speed, and power, are being uploaded and summarized by performance trainers and scrutinized by coaches. But, mentally, where is the team at? Are they cognitively as sharp as they were two months ago? Are they thinking about family members or friends? How has this new pattern of living affected their brain?
Of course, team psychologists will have discussions with players, when needed, to address any concerns that they bring forward. Yet, it would benefit players and the team if there was a standardized framework for assessing their overall readiness to endure the battle on the field, in other words, their cognitive fitness. On top of physical capabilities, the variables of anticipation, awareness, perception and decision-making often determine the outcome of a game.
Because we all need one more reason to get off the couch and on the treadmill or the empty trail while we work from home, researchers at the University of California, Davis have found that the neurotransmitters in our brains actually switch into a hyper-learning mode after aerobic exercise.
n the 2019 College Football Playoff National Championship game, two true freshmen, quarterback Trevor Lawrence and wide receiver Justyn Ross, made a startling statement as they dominated the defending champion Alabama Crimson Tide. The Lawrence to Ross connection produced 6 catches for 153 yards, including a game-breaking 74-yard touchdown pass and a one-handed circus catch for a late, crucial first down. Two 19-year-olds, one 6 feet, 6 inches and the other 6’ 4”, outplayed one of the best defensive units in the country.
In our latest book, we featured the rise of Justyn Ross and his ironic results at Nike’s “The Opening” competition for high school football stars. Despite the speed and athleticism that Ross displayed in the national championship game, he has another, defining quality that doesn’t show up in the SPARQ ratings - he’s a Playmaker.
The double-edged sword of respect and expectation that comes with the number 10 jersey is reserved for the shoulders of a player that can handle the weight. So when Jürgen Klinsmann, former U.S. Men’s National Team head coach, handed it to seventeen-year-old Christian Pulisic before a 2016 World Cup qualifier game, he knew the load that was being placed on the young playmaker. “The No. 10 has a meaning,” Klinsmann said. “Ask him now how he feels with that heavy number on his back.”
That night, Pulisic responded brilliantly, scoring two goals and assisting on a third in just twenty-six minutes, making him the youngest U.S. player ever to score in a World Cup qualifier. Even Bruce Arena, who’s seen his share of promising prospects in his forty years of coaching at the college, pro, and national team levels, believes in Pulisic. “I think he is just a natural,” said Arena. “The game’s easy for him. He’s got exceptional skill, vision, he’s pretty smooth.” Wary of anointing him a savior too early, Arena did inch out on a limb when pressed: “It makes you think that this is going to be perhaps the first American superstar in the sport. You have to be hesitant about this but this is a very talented young man.”
For those baseball hitters who can do the former, the latter comes much easier. Seeing, identifying and selecting which pitch to swing at is a combination of visual perception, brain processing and motor skill execution. Sure, the physics of hitting a baseball, measured by things called launch angle and exit velocity, determine the trajectory and distance of a batted ball. But it’s that pre-contact decision making process that gets hitters on base so they can score runs and win games. Just as bat speed, leg drive and arm strength define the distance of a hit, the purely cognitive skills of perception, information processing and hand-eye coordination pick out the best pitch to hit and, more importantly, which pitch to avoid.
And when you’re 5 feet, 9 inches tall, you rely on those brain skills much more than physical dominance to stay up in the big leagues. That’s exactly what Mookie Betts, right fielder for the 2018 World Champion Boston Red Sox, has done over his young four-season career. Sure, he won the AL batting title this year with a .346 batting average, but he also had a league high slugging percentage, with 32 home runs and 80 RBIs.
Substituting brain for brawn, Betts excels in a category of baseball analytics known as plate discipline, in other words, picking the right pitch to swing at and then making contact with that swing. In the pre-swing decision-making process, hitters with good plate discipline swing at pitches in the strike zone, not out of it. When they do decide to swing, they make contact more often with better hand-eye coordination.
“I’ve done this a long time and I’ve never had a game like that. This is uncharted territory.” To be sure, it was one of Mason Crosby’s worse games of his 12-year NFL kicking career, missing four out of five field goals and an extra point. In his last five full seasons, the Green Bay Packers kicker has made an average of 85% of his field goals, so his week 5 game, a 31-23 loss to the Detroit Lions, was more than a statistical anomaly. Missing wide from 42, 41, 38 and 56 yards, Crosby was at a loss to explain his sudden inaccuracy, “Every attempt I felt like I was in rhythm going through it,” said Crosby. “It was one of those days that just wasn’t there. I’ve done this a long time, and I’ve never had a day where it wasn’t there like that.”
These pre-game preparations are certainly important for warming up the arms and legs, getting the heart rate up and loosening up muscles. But maybe more importantly, this skill repetition also gets the brain ready for the hundreds of actions it will need to perform soon after.