Every time a young child looks at a dog and says “doggie!” – then points at a cat and says “doggie!” too – something profound is happening. They’re not confused; they’re in the middle of building a concept. Concept development is the cognitive process through which children move from raw sensory experience to stable, generalized ideas about the world. It’s how “that specific white horse” eventually becomes the broad idea of horse. Understanding how this process unfolds – step by step – is essential for anyone working with or caring for young children, particularly those with intellectual disabilities who may need additional support at each stage.
Table of Contents
- What is a concept, and why does it matter?
- Step 1: Experience through the senses
- Step 2: Perception – giving meaning to experience
- Step 3: Abstraction – finding what’s common
- Step 4: Generalization – forming the stable concept
- Why this process matters for children with intellectual disabilities
- How educators and caregivers can support each stage
What is a concept, and why does it matter?
A concept is a generalized mental representation – a category that captures the common properties of objects, events, or people. As researchers at the National Institutes of Health describe it, concept formation is a foundational cognitive function that underlies categorization, abstraction, and the development of higher-order thinking. Without concepts, a child would need to relearn everything from scratch with every new encounter. A child who has formed the concept of “chair” can recognize a stool, a bench, or a throne – even if they’ve never seen that specific object before.
Cognitive development researchers identify conceptualizing as one of the brain’s most critical higher mental processes, alongside reasoning, problem-solving, and memory. Concepts are, in essence, the mental shortcuts that allow children – and adults – to make sense of an endlessly varied world. So how exactly do young children build these mental frameworks? The process unfolds in four key steps.
Step 1: Experience through the senses
The starting point for every concept is direct, sensory experience. Before a child can form any idea about an object or event, they must first encounter it – through sight, sound, touch, taste, or smell. This is not passive observation. Young children are active explorers who use all available senses simultaneously to gather information about their world.
According to Michigan State University Extension, the process of solving problems – and by extension, forming concepts – begins with observation: taking in the attributes of objects through multiple senses and storing those experiences in sensory memory. That sensory memory becomes the raw material for all future cognitive processing.
The brain’s reliance on sensory input for learning is not merely educational theory – it has a neurological basis. Research on early brain development shows that by age three, a child’s brain reaches approximately 1,000 trillion synaptic connections, most of which are built through sensory experience. Every touch, taste, and sound contributes to the neural architecture that supports later concept formation. This is why sensory-rich environments – blocks, sand, water, varied textures – are not optional extras in early childhood settings. They are foundational.
For a child first encountering a horse, this step is vivid and multi-layered: the large shape and movement of the animal, the sound of hooves, the smell of the stable, the feel of the mane. All of this raw data is collected and stored, ready for the next stage of processing.
Step 2: Perception – giving meaning to experience
Sensory data alone does not create a concept. The child’s brain must next perceive that data – organize it and give it meaning. Perception is the process by which the brain interprets sensory information and forms a mental image of the specific object or event encountered.
This mental image is particular and concrete, not yet generalized. The child doesn’t form an idea of “horse” in the abstract – they form a precise mental snapshot of this horse: the white one, moving through the field, making that sound. Psychology researchers describe this as the stage of “becoming aware” – the initial formation of a specific perceptual idea that becomes the cognitive anchor for all future comparisons.
According to Piaget’s framework, outlined in NCBI’s review of cognitive development, when young children encounter something new, their brains attempt to fit it into existing mental schemas through a process called assimilation. When the experience doesn’t quite fit – when this new animal is unlike anything they’ve encountered – the brain must accommodate: adjusting or creating new schemas. This tension between assimilation and accommodation is what drives cognitive growth forward.
It’s worth noting that this perceptual stage is not error-free. Children at this point may associate a horse with a specific location, a specific handler, or even a specific smell. The mental image is real but incomplete. That is entirely normal – and necessary. It’s the next two steps that refine and extend it.
Step 3: Abstraction – finding what’s common
With a perceptual image in place, the child’s brain begins doing something remarkable: it starts looking for patterns. When the child later encounters a brown horse, their brain doesn’t simply register a new experience – it compares it to the stored image of the white horse. What is the same? What is different?
This is abstraction – the cognitive process of analyzing multiple examples to identify shared, essential features while setting aside superficial differences. Researchers in cognitive psychology describe abstraction as the process by which experiences are analyzed “in the absence of actual situations” – the child mentally revisits their stored perceptions and extracts what is common. It is this process, they argue, that actually transforms comparable experiences into concepts.
Abstraction at this stage is still tied to sensory and motor experience. As cognitive neuroscientists writing in the journal Language, Cognition and Neuroscience note, young children’s conceptual systems are organized through their sensory and motor experiences before they gradually detach from direct sensory grounding. The child isn’t thinking abstractly in the adult sense – they’re comparing mental images, not verbal definitions.
Common errors appear naturally here. A child may initially abstract “four legs” as the defining feature of a horse, which means they might also call a cow a horse. This is not a failure – it is evidence that abstraction is working. The child is trying to identify patterns; they just need more varied examples to refine which features are truly essential. Exposure to multiple instances – horses of different colors, sizes, breeds – helps the brain narrow down the right set of features.
Step 4: Generalization – forming the stable concept
After repeated comparisons and abstractions, the child reaches the final step: generalization. This is where a stable, usable concept is formed. The child is now able to recognize a new instance of the category – even one they’ve never seen before – because it matches the essential features they’ve identified.
As defined in educational psychology, generalization is the process of extending a concept to cover objects that share common properties with already-experienced examples, even without direct prior experience of those specific objects. The child no longer needs to check with an adult whether a black Shetland pony is a horse – they can apply their concept independently and correctly.
At this point, the child has formed what psychologists sometimes call a prototype – a mental representation of the typical features that define the category. They can recognize a draft horse, a miniature horse, or a stylized illustration of a horse, because all share the core features their brain has identified as essential. The concept is now genuinely flexible and transferable.
Generalization also enables prediction. A child who has formed the concept of “dog” doesn’t just recognize dogs – they can anticipate that a dog might bark, wag its tail, or want to be petted. Research from the NIH confirms that the ability to form, apply, and manipulate concepts is essential to adaptive functioning across cognitive, social, and academic domains. It is, in other words, the foundation of practical intelligence.
Why this process matters for children with intellectual disabilities
For children developing typically, these four steps happen organically through everyday play and exploration. For children with intellectual disabilities, each step may require intentional support. Concept formation is learned largely through direct sensory and perceptual experience, and children who have reduced access to varied experiences – or who process sensory information differently – may need more structured opportunities at each stage.
Applied behavior analysis research recommends breaking complex concepts into smaller, manageable steps, creating structured routines, and encouraging children to apply learned skills across different settings and materials. This directly mirrors the four-step process: ensuring rich sensory input, supporting perception through clear and consistent labeling, scaffolding the abstraction phase with carefully varied examples, and reinforcing generalization by presenting concepts in new contexts.
Early recognition of learning differences, according to NIH research, leads to earlier intervention and promising results for cognitive development. Educators and caregivers who understand the mechanics of concept formation are far better placed to identify where a child may be struggling – and to provide the right kind of support at the right stage.
How educators and caregivers can support each stage
The four-step model has clear practical implications. For Step 1, create sensory-rich environments with varied materials – different textures, sounds, and objects drawn from real life. Michigan State University Extension identifies sensory play as the foundation of all the skills children will use in academic learning, from reading to solving science problems.
For Step 2, support perception through clear naming and consistent language. When a child sees a horse, name it. Describe it. Connect the label to the sensory experience. NIH-published research confirms that language, alongside experience and reasoning, plays a critical role in how children form and refine concepts.
For Step 3, deliberately present multiple examples of the same concept – dogs of different breeds, cups of different shapes, chairs of different styles. Research on early childhood development from the National Academies shows that from very early in life, children are integrating disparate observations into coherent conceptual systems. That process needs varied input to work well.
For Step 4, test generalization by introducing the concept in entirely new contexts. Can the child identify a horse in a picture book, in a cartoon, or at a different farm? Successful generalization is the sign that a stable concept has been formed – and it is the goal toward which the whole process moves.
What do you think? When you reflect on how children in your care form concepts, which of these four steps do you think receives the least deliberate attention – and what might change if it did? How might the process look different for a child who has limited access to varied sensory experiences in their early years?
References
- https://pmc.ncbi.nlm.nih.gov/articles/PMC4293374/
- https://nobaproject.com/modules/cognitive-development-in-childhood
- https://www.canr.msu.edu/news/cognitive_development_and_sensory_play
- https://cefa.ca/parent-resource/why-is-sensory-play-important-in-the-early-years/
- https://www.psychologydiscussion.net/thinking/formation-of-concepts-4-main-steps-concepts-thinking-psychology/3131
- https://www.ncbi.nlm.nih.gov/books/NBK537095/
- https://www.tandfonline.com/doi/full/10.1080/23273798.2019.1660797
- https://bedpsychology.wordpress.com/cognitive-development/concept-formation/
- https://www.mastermindbehavior.com/post/teaching-abstract-thinking-skills-through-aba
- https://www.ncbi.nlm.nih.gov/books/NBK310550/
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