IB Biology HL Topic 6 — Scientific Inquiry Cycle Internal Assessment Practical skill ~10 min read

Controlling Variables

Listing controlled variables in your plan is easy. Actually holding them steady while you work is the hard part — and it is the difference between data that answers your question and data that answers a question you never asked.

📚 What you need to know

Random error and systematic error

Two different problems, fixed in two different ways.

Random error scatters readings either side of the true value — slight differences in timing, in judging a colour, in how much water clings to a potato cylinder. Repeats and means reduce it.

Systematic error shifts every reading the same way. A thermometer that reads 2 °C high, a balance that was never zeroed, surface water left on tissue before weighing. Repeating the experiment does not help at all — you just get the same wrong answer more precisely. Calibration and careful technique are what fix it.

Why this distinction matters. If your evaluation says “the results could be improved by doing more repeats”, you have only addressed random error. Examiners want to see that you can spot a systematic problem too — and those are usually the ones that made your numbers wrong rather than just messy.

Calibration

Calibration is checking an instrument’s readings against something you know is right, and adjusting it if needed. It takes a few minutes and protects every number you collect afterwards.

Two-point calibration of a thermometer or probe check the ends, and you can trust everything in between melting ice boiling water should read 0.0 °C the range you actually measure in should read 100.0 °C if it reads 2 °C high at both ends, every result is 2 °C high This is a systematic error, and repeats will never fix it boiling point is 100.0 °C at standard pressure, using distilled water
The same logic applies to a pH meter: check it at two known buffers, and readings between them can be trusted.
InstrumentHow to calibrate or check itWhat goes wrong if you skip it
pH meterCalibrate against at least two standard buffers, e.g. pH 4.00 and pH 7.00, before taking readingsEvery pH value is shifted, so your buffers are not the pH you think they are
Digital thermometer or temperature probeCheck in crushed melting ice (0.0 °C) and boiling distilled water (100.0 °C at standard pressure)Water bath temperatures are all wrong by the same amount
Oxygen or carbon dioxide sensorCalibrate against the known concentration of that gas in airRates of photosynthesis or respiration are consistently over- or under-read
Eyepiece graticuleCalibrate against a stage micrometer, separately at each magnificationEvery cell measurement is wrong, and changing magnification changes the error
Digital balanceZero (tare) it before every reading, with the container in placeYou weigh the container as well as the sample, every time
The graticule one catches people out. The graticule divisions do not change, but what each division represents changes completely when you switch objective lens. Recalibrate at every magnification you use, and say so in your method.

Keeping conditions constant

Living things respond to their surroundings, so the surroundings have to be pinned down.

Some things genuinely cannot be held constant. Room temperature drifts through a lesson. In that case, do the next best thing: measure and record it at intervals, then discuss the possible effect in your evaluation. A recorded, acknowledged variable is far better than an ignored one.

Samples and biological variation

No two potatoes are the same, and no two leaves from the same plant are identical. That variation is real biology, not sloppiness — but it can drown your trend if you let it.

Representative means the sample behaves like the whole. The bigger and more random the sample, the more likely that is. A single quadrat in an interesting-looking patch tells you about that patch and nothing else.

The control run

A control is a set-up treated in exactly the same way as your experimental ones, but with the independent variable removed. Its job is to prove that the IV caused the effect, and not something else.

A control run: everything the same, except the one thing being tested EXPERIMENTAL CONTROL casein + active trypsin casein + boiled trypsin turns clear stays cloudy The control is what rules out every other explanation without it, you cannot say the enzyme caused the change rather than the warmth or the buffer
Boiling the enzyme is neater than leaving it out altogether: the control tube then contains exactly the same substances, just with the enzyme denatured.

Two more examples of the same idea:

Worked examples

WORKED EXAMPLE 1

For an investigation into the effect of light intensity on the rate of photosynthesis in pondweed, state three controlled variables, how you would control each, and why it matters.

Temperature of the water Control: stand the beaker in a water bath at 25 °C, and place a heat shield between lamp and beaker Why: the lamp warms the water, and photosynthesis depends on enzymes, so a closer lamp would raise the rate through temperature as well as light Carbon dioxide availability Control: use the same volume of 1% sodium hydrogencarbonate solution, freshly made, for every trial Why: carbon dioxide is a substrate for photosynthesis and can become the limiting factor instead of light The pondweed itself Control: use 5.0 cm lengths cut from the same plant, and leave each for 5 minutes to settle before counting Why: different pieces have different numbers of chloroplasts, and freshly cut stems release trapped gas that is not from photosynthesis Each answer names the variable, the method, and the biological reason That heat shield point is the one that earns credit — it shows you spotted that the IV and a controlled variable are linked.
WORKED EXAMPLE 2

A student measures pigment leakage from beetroot discs and finds that even the coolest sample gives a strong red colour. Suggest the systematic error and how to remove it.

Step 1: what does “even the coolest” tell you? Every reading is too high by roughly the same amount A shift affecting all readings equally points to systematic error, not random error. Step 2: find the cause Cutting the discs ruptures cells at the surface, and that pigment washes off into the water regardless of temperature Step 3: remove it Rinse the cut discs in distilled water and blot them before use Step 4: say what will not help More repeats — they would simply confirm the same inflated values Rinse the discs; repeats cannot fix a systematic error

💡 Exam tip

⚠ Common mix-up

That completes Stage 1. Up next: Stage 2 — Collecting & Processing Data, where careful design turns into numbers you can actually analyse.

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