Is Your Child Revising — or Merely Looking at Their Notes?
Time spent revising and learning achieved are not necessarily proportional.
There is a reassuring sight familiar to many parents during the months leading up to examinations.
A child is sitting at a desk.
The textbook is open. There are several exercise books spread around. Perhaps there are some coloured highlighters, beautifully written revision cards and a laptop showing a presentation from school.
They have been sitting there for two hours.
Surely that must mean they have been revising?
Possibly.
But there is another possibility.
They may simply have spent two hours looking at things they already recognise.
And recognition is not the same as recall.
That distinction is one of the most important things students can understand about revision.
A student can spend hours rereading a chapter and come away with the comforting feeling that they "know it". Yet when the book is closed and an examination question appears asking them to explain the process, perform the calculation or apply the idea in an unfamiliar situation, the knowledge suddenly seems much less secure.
Effective revision is not primarily about how long somebody sits at a desk.
It is about what their brain has been required to do while they are there.
Why Rereading Feels So Effective
Rereading is attractive because it is comfortable.
Suppose a Biology student reads:
"Insulin is produced by the pancreas and causes blood glucose concentration to decrease."
They read it once.
Then again.
By the third reading it looks extremely familiar.
The student thinks:
"Yes, I know this."
But familiarity can be deceptive.
Close the book and ask:
Which organ produces insulin?
What stimulates its release?
What effect does insulin have on liver cells?
How is this part of a negative feedback system?
Suddenly the student may discover that recognising the paragraph was much easier than reconstructing the knowledge independently.
The same thing happens in almost every subject.
A Physics equation looks obvious when it is printed underneath the example.
A Maths solution looks straightforward when somebody else has already completed the algebra.
A Chemistry mechanism seems completely logical when all the arrows have already been drawn.
But the examination does not normally ask:
"Does this answer look familiar?"
It asks:
"Can you produce the answer yourself?"
That is a very different mental task.
Highlighting Can Be Useful — But It Is Not Revision by Itself
I have nothing against highlighters.
Used properly, highlighting can help identify:
important vocabulary;
definitions;
equations;
dates;
key evidence;
command words;
relationships between ideas.
The problem begins when colouring the page becomes the objective.
I have seen revision notes where almost every sentence has been highlighted.
At that point the highlighter has stopped identifying important information because everything has apparently become important.
There is also a psychological trap.
Highlighting feels productive.
You begin with an ordinary page and finish with a colourful page.
Something has visibly changed.
Unfortunately, the important question is not:
"Have my notes changed?"
It is:
"Has my memory changed?"
That is much harder to see.
Retrieval Practice: Close the Book
One of the simplest improvements a student can make is also one of the most uncomfortable.
Close the book.
Then try to remember.
This is retrieval practice.
Instead of repeatedly putting information into the brain, the student practises getting information back out.
For example, after studying photosynthesis, close everything and write:
Everything I can remember about photosynthesis.
Perhaps the student writes:
Photosynthesis happens in chloroplasts.
It needs light.
It uses carbon dioxide and water.
It produces glucose and oxygen.
Then they might try the equation:
carbon dioxide + water -> glucose + oxygen
Then ask:
What happens to the glucose?
Why does light intensity affect the rate?
Why does carbon dioxide concentration affect the rate?
How could the rate be measured experimentally?
What eventually becomes the limiting factor?
Only after attempting the answers should the student reopen the book.
Now something very valuable happens.
They can see exactly what they did not know.
That gap is where the next piece of revision should be concentrated.
The Blank-Paper Test
A particularly simple version of retrieval practice requires almost no equipment.
Take a blank sheet of paper.
Write the topic at the top.
For example:
Electromagnetic Spectrum
Now, without looking at anything else, write everything you can remember.
Perhaps:
radio waves
microwaves
infrared
visible light
ultraviolet
X-rays
gamma rays
Then continue.
Which has the longest wavelength?
Which has the highest frequency?
What are their uses?
What are their dangers?
How are they produced?
What happens to frequency as wavelength decreases?
Only after exhausting your memory should you look at your notes.
Use a different pen to add everything you missed.
That second colour is particularly useful because it shows the student exactly where the weaknesses lie.
Do the exercise again several days later.
If fewer additions are required, learning has occurred.
Maths and Physics Need Calculation Practice
There is an additional problem in mathematical subjects.
You cannot learn to calculate simply by reading somebody else's calculations.
Imagine trying to learn tennis by watching somebody serve.
Watching an expert may help you understand the movement.
But eventually you have to pick up the racket.
The same principle applies to Maths and Physics.
Suppose a student is revising kinetic energy.
They might know:
KE = 0.5 x m x v^2
That is useful.
But examination questions may require them to:
calculate kinetic energy;
rearrange the equation;
calculate velocity;
convert grams into kilograms;
interpret information from a graph;
combine the equation with another part of the question;
explain what happens when velocity doubles.
Knowing the equation is only the starting point.
For example, if velocity doubles:
KE = 0.5 x m x v^2
The velocity is squared.
So doubling velocity gives:
2^2 = 4
The kinetic energy becomes four times as large, assuming the mass remains unchanged.
That understanding becomes much more secure when a student has actually used the equation repeatedly.
Past-Paper Questions Reveal What You Really Know
Past-paper questions are among the most useful revision tools available.
But even these can be used badly.
Some students answer a question, look at the mark scheme and think:
"Yes, that's basically what I meant."
That can be dangerous.
The examination does not award marks for what the student meant.
It awards marks for what they wrote.
A better process is:
Attempt the question without help.
Mark it carefully.
Identify exactly why each mark was lost.
Correct the answer.
Try a similar question later.
The fourth and fifth stages matter enormously.
Simply looking at the correct answer does not necessarily correct the underlying problem.
Keep a Mistake Log
One of the most useful revision documents a student can create is not a set of perfect notes.
It is a record of their mistakes.
For example:
| Topic | Mistake | Why I lost the mark | What I must remember |
|---|---|---|---|
| Density | Forgot units | Answer incomplete | Always give kg/m^3 or g/cm^3 |
| Genetics | Confused genotype and phenotype | Vocabulary weak | Genotype = alleles, phenotype = characteristic |
| Algebra | Expanded bracket incorrectly | Sign error | Check negative multiplication |
| Physics | Used diameter instead of radius | Misread diagram | Mark radius before calculating |
| Chemistry | Said molecules instead of ions | Incorrect particle terminology | Ionic compounds contain ions |
This turns mistakes into useful information.
A student who never analyses errors may keep practising the same mistake.
A student who studies their errors starts removing them.
Explain It Aloud
There is another excellent test:
Teach the topic to somebody else.
The other person does not even need to understand the subject.
Explain:
how a transformer works;
why plants grow towards light;
what natural selection means;
how electrolysis works;
why increasing temperature increases reaction rate;
how simultaneous equations are solved.
If the explanation becomes:
"You know... it's the thing where... well, basically..."
then the student has discovered an area that needs more work.
Being able to recognise a textbook explanation is one level of understanding.
Being able to explain the idea clearly without the textbook is much stronger evidence that the knowledge is secure.
I frequently find that asking a student the apparently simple question "Why?" reveals far more than asking whether they understand something.
"Do you understand?"
"Yes."
"Why does increasing temperature increase the rate of reaction?"
That requires the understanding to be demonstrated.
Do Not Revise Only What You Enjoy
Students naturally gravitate towards topics they already understand.
This is hardly surprising.
Getting questions right feels good.
Struggling through something difficult does not.
A student might spend an evening happily completing straightforward algebra while carefully avoiding circle theorems.
Or spend hours revising cell structure while avoiding inheritance.
Or repeatedly practise familiar mechanics calculations while ignoring electricity.
The result is plenty of revision activity without addressing the weakness that may actually determine the examination grade.
A useful revision question is therefore:
"What am I most tempted not to revise?"
That is often an excellent place to start.
A Simple Experiment Students Can Perform on Themselves
Here is an experiment I would encourage students to try.
It requires no specialist equipment and takes only a few days.
Choose two topics of roughly equal difficulty that you have already encountered but do not know particularly well.
Call them Topic A and Topic B.
Topic A — Passive Revision
Spend 30 minutes revising Topic A by:
rereading notes;
looking through the textbook;
highlighting;
reviewing worked examples.
Stop after 30 minutes.
Topic B — Active Revision
Spend 30 minutes on Topic B.
But this time:
read the material briefly;
close the book;
write what you remember;
answer questions;
explain the topic aloud;
check your answers;
correct your mistakes;
test yourself again.
Again, stop after 30 minutes.
Now do something very important.
Leave both topics alone for 48 hours.
Do not deliberately revise either one.
After 48 hours, give yourself a test on both topics.
Ideally use:
ten short questions;
several definitions;
one explanation question;
one application question;
calculations where appropriate.
Mark both tests.
The result can be surprisingly revealing.
Students often discover that the topic which felt harder to revise is the one they remember better.
Why?
Because difficult retrieval was forcing the brain to practise the thing it would later need to do.
Retrieve the information.
Effective Revision Often Feels Harder
This is one of the strange features of learning.
Poor revision can feel good.
Effective revision can feel uncomfortable.
Reading something for the fifth time produces familiarity.
Trying to recall it with the book closed produces uncertainty.
Attempting an examination question exposes mistakes.
Explaining something aloud exposes gaps.
Being tested can feel frustrating.
Yet those are often precisely the activities producing the greatest learning.
Students therefore need to stop judging revision entirely by how comfortable it feels.
Some struggle is useful.
The Difference Between Testing and Judging
Parents sometimes worry that constantly testing their child will increase examination pressure.
There is an important distinction here.
Testing does not have to mean judging.
A ten-question quiz can simply be a diagnostic tool.
If a student scores 4/10, that does not necessarily mean:
"You are bad at this."
It means:
"We have identified six things worth revising."
That is useful information.
In fact, discovering weaknesses several months before an examination is considerably better than discovering them during the examination itself.
Try the Five-Minute Recall Test
Parents can use a very simple question:
"Tell me what you learned today."
Not:
"What did you revise?"
That may produce:
"Biology."
Instead ask:
"What can you tell me about what you revised?"
A student who has spent an hour on respiration might be able to explain:
aerobic respiration;
anaerobic respiration;
the word equation;
where respiration occurs;
why respiration is important;
oxygen debt;
differences between respiration and breathing.
That is evidence of learning.
If the answer is:
"I don't really remember, but I read the chapter",
then the hour may not have been as productive as it appeared.
Revision Should Produce Something
One useful rule is that an effective revision session should usually leave some evidence behind.
Not necessarily beautiful notes.
It might leave:
ten completed questions;
a marked past-paper section;
a page of recalled information;
corrected calculations;
flashcards containing difficult material;
a list of mistakes;
an improved essay paragraph;
questions the student has discovered they cannot answer.
The evidence shows that the student has interacted with the material rather than merely looked at it.
Use Flashcards Properly
Flashcards can be excellent.
They can also become another form of passive reading.
Reading the question and immediately turning over the card does very little.
Instead:
Read the question.
Stop.
Say or write the answer.
Only then turn the card over.
If the answer was wrong, that card should return sooner.
If the answer was easy, it can wait longer before appearing again.
The value of the flashcard is not the information printed on it.
The value comes from forcing the brain to retrieve the information before seeing the answer.
Revision Is Different in Different Subjects
There is no single perfect revision technique.
Different subjects require different forms of practice.
Mathematics
Students need to solve problems.
Not merely read worked solutions.
Physics
They need calculations, explanations, graphs, practical interpretation and application.
Chemistry
They need equations, calculations, mechanisms, explanations, practical methods and precise terminology.
Biology
They need accurate vocabulary, processes, explanations, data interpretation and application to unfamiliar situations.
English
They need to analyse language, construct arguments, retrieve quotations and practise writing.
Psychology and Sociology
They need knowledge, terminology, studies, evidence, evaluation and the ability to construct structured arguments.
The common principle is that revision should resemble the type of thinking the examination will eventually demand.
A Better One-Hour Revision Session
Compare these two evenings.
Evening One
60 minutes:
Read Biology notes.
Highlight important parts.
Look through textbook diagrams.
Everything feels familiar.
Finished.
Evening Two
10 minutes — quickly review the topic.
15 minutes — close everything and write what you remember.
15 minutes — complete examination questions.
10 minutes — mark them carefully.
5 minutes — write down mistakes.
5 minutes — explain the hardest idea aloud.
Both students can truthfully say:
"I revised Biology for an hour."
But the learning experience has been completely different.
Parents Should Ask About Outcomes, Not Hours
This also changes the conversation parents can have with their children.
Instead of:
"How many hours have you revised today?"
try:
"What can you do now that you couldn't do this morning?"
That is a much more interesting question.
Perhaps:
"I can now solve quadratic equations."
"I finally understand electromagnetic induction."
"I can explain how vaccines produce immunity."
"I learned the stages of mitosis."
"I realised that I keep forgetting units in calculation questions."
"I completed half a past paper and corrected six mistakes."
Those answers tell us considerably more than:
"I revised for three hours."
The Goal Is Not to Spend More Time Revising
Students are already under considerable pressure.
The solution is not necessarily to tell them to sit at their desks for even longer.
Often the better solution is to make the time they already spend more effective.
Thirty minutes of concentrated retrieval and question practice may achieve considerably more than two hours of distracted rereading.
That does not mean rereading has no place.
It can be useful when first learning or refreshing material.
But it should usually be followed by something more demanding.
Close the book.
Retrieve.
Calculate.
Explain.
Answer.
Mark.
Correct.
Repeat.
The Most Important Question
The next time your child says:
"I've been revising for two hours,"
there is no need immediately to ask them to revise for a third.
Instead, ask:
"What can you remember without looking?"
That single question gets remarkably close to the heart of effective revision.
Because examinations are ultimately closed-book retrieval exercises.
The student will eventually sit down with a paper containing questions they have never seen before.
Their beautifully highlighted notes will not be beside them.
Their textbook will not be open.
They will have to retrieve knowledge, apply it and communicate it accurately.
So revision should practise exactly that.
Do not measure revision simply by the amount of time spent looking at information.
Measure it by what the student can now retrieve, explain, calculate and apply.
Because time spent revising and learning achieved are not necessarily proportional.
The real question is not:
"How long did you revise?"
It is:
"What have you learned?"
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