Young children find it hard to concentrate for long on tasks but are often good at discovering hidden “tricks” to make the task easier. Spontaneous strategy changes help them to do this, according to a study on learning behaviour in children by the Max Planck Institute for Human Development in Berlin.

As we know, it takes a while before our brains grow enough to enable us to concentrate as well as adults.  Children’s attention span is short and they remember less of a task than adults do. As a result—so far assumed—they have a disadvantage when solving tasks. However, a study by the Max Planck Research Group “NeuroCode—Neural and Computational Basis of Learning, Memory and Decision Making” at the Max Planck Institute for Human Development now shows that a child’s broader attentional focus  (rather than a pinpointed focus on a task) can also prove to be an advantage: children are good at processing less relevant information and using it to spontaneously find new and creative strategies when solving tasks.

Adults, too, show spontaneous strategy changes when solving tasks, similar to so-called “aha-moments” that make solving a task easier. The journal article, published in the journal PLOS ONE, shows that while children perform significantly worse when solving tasks using traditional strategies, such as focused attention, they are just as likely as adults to master tasks using spontaneous strategy shifts.

“Our results show that while children are often less focused and more easily distracted than adults, they are surprisingly flexible in discovering entirely new solutions,” says psychologist and neuroscientist Nicolas Schuck, group leader of the Max Planck Research Group NeuroCode.  “Especially considering their not fully developed ability to concentrate, these are important results for researching learning behaviour in children,” Schuck added.

The study, which has been ongoing since 2013, used the following method to conduct research: 47 children between the ages of 8 and 10 and 39 young adults between the ages of 20 and 35 were asked to perform the same decision-making task. In this task, they were asked to determine the position of a pattern using two possible answers. The colour of the pattern was not initially relevant to the correct answer, but began to be associated with the correct answer as the task progressed. When participants noticed this, they were able to solve the task much more efficiently and easily. The participants were not informed that there would be other factors influencing the possible solution strategies and could only identify them independently. 

Compared to the young adults, the children generally performed significantly worse in solving the task. They had more incorrect and premature answers. However, the proportion of children (27.5%) who discovered and then used the helpful colour strategy was very similar to that of the young adults (28.2%).

As long as children only used the initial strategies and rules available, which required concentration and persistence, they performed worse. However, just as many children as young adults discovered and used the colour rule. Thus, although children performed worse in all areas of cognitive control, an almost equal proportion of them compared to the young adults were able to improve through an “aha moment”, and thus gained a similar performance advantage as the adult group.

The newfound knowledge around the “aha moment” is an important finding of the study. “Our findings provide evidence that educators, parents, and teachers should be less insistent on rigid rules, and only teach the one concrete way to solve problems, but also value and encourage children’s broader attentional focus. Our findings show: We can have more confidence in children’s creative problem-solving strategies,” says Anika Löwe of the NeuroCode team and co-author of the study. In the future, she says, in the field of cognitive developmental psychology, there should be more research on creative processes rather than on lack of concentration in children.

 

 

 

Martin Doherty, writing for The Conversation, says that at the age of about four, children reach important milestones in brain development.

One of these is a huge improvement in understanding others’ thoughts and feelings. This is the start of empathy.  Another is in spatial thinking—understanding how objects are positioned and related. This is the beginning of the ability to read maps.

Martin and his colleague, Catherine Sayer, conducted a study with 175 two to five-year-olds to explore how children are able to use scale models to figure out where something is in the real world. At about four, children are able to use a scale model of a room to work out where something is. We thought that this might result from children’s understanding of how one thing can represent something else. But we actually found that four-year-olds’ ability to use scale models came from their spatial abilities.

At the same age, children start to understand that someone’s behaviour is due to what that person believes, not necessarily what is really the case. This has interesting consequences.

If you’ve played hide-and-seek with young children, you may have noticed that they aren’t always very good at it. They love the ritual of looking in all the wrong places first, but beforehand they may tell you where they are going to hide, hide in the same place every time, or not be especially hidden.

After their fourth birthday, they get much better at hide and seek. They understand that the seeker looks in the wrong places because they don’t know where the hider is.

At about three to four children also start to tell lies. They realize they can make someone believe something that isn’t true.

Understanding symbols

Martin’s earlier research with fellow psychologist Josef Perner suggests that four-year-olds don’t just start to understand how others’ minds work. Figuring this out is part of the development of an understanding of “representation”—that symbols, like thoughts, words, or pictures, can be used to stand for something else.

Children start to think about how words relate to objects. This means, for instance, knowing that “animal” can refer to something you already have a name for, such as “rabbit”. This might help children learn the new word.

Their ability to use a understand the components of pictures also improves around this age. Very young children use a lot of trial and error to complete a jigsaw, picking up random pieces to see if they fit. By the time they are about four years old, they start to use the picture as a guide, trying to connect lines and match bits of colour, while checking the guide picture on the box lid.

Developmental experiments

Another ability children develop at around four is using scale models. A classic set of developmental experiments involved a model of a regular household room. The real room had typical furniture—sofa, table, cupboard and so on—and the model had miniature versions laid out in the same way.

Children were shown where something was hidden in the model and told to find an object hidden in “the same place” in the room. Children of around four can find the object using the identical layouts. If shown a sticker under a particular chair in the model room, for example, they can go straight to the “same” chair in the other room. This is the fundamental understanding required to read maps.

Adults see scale models and maps as representations. Maps represent a town or a country. A scale model of, say, the Eiffel Tower represents the real thing. At first, Martin suspected children’s ability to use scale models is more evidence of understanding representation at this age.

He was wrong. Instead, the researchers found that this ability is based on a development in children’s spatial abilities that also occurs at about four. This is the ability to think about spaces and where objects are within them. Spatial abilities help with maths skills, and good spatial ability is linked to an interest in science, technology, engineering and mathematics.

Their experiment was simple. They compared the model room task with a test of understanding how representation works. The two abilities develop around the same age, but they found they were not related. Children who could do one task couldn’t necessarily do the other.

They also had a test of purely spatial ability. Children who passed the model room task also passed the spatial task. So it looks like the model room task relied on children‘s spatial thinking.

They don’t yet know why two important but apparently unrelated abilities arise at the same time. Perhaps it’s related to changes in the growing brain at this  interesting age.

Provided by The Conversation

Image supplied by Freepik.