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Recording results: tables, units and the solidus

Experimental skills · Practical skills · note 2 of 7

Recording results: tables, units and the solidusSpec S2

In short

A Cambridge results table is ruled, with the independent variable in the first column and each heading giving the quantity and unit separated by a solidus, such as time / s. Units go only in the heading, never in the body. Record data to the precision of the instrument, to the same decimal places in each column.

Paper 6 often gives marks just for drawing a correct results table. Cambridge has strict rules for this, and the most important one is the solidus: the quantity and its unit are separated by a slash, as in time / s.

The rules for a results table

  • Draw a ruled table with a border and lines between columns.
  • Put the independent variable in the first column and the dependent variable (with any repeats and the mean) in the next columns.
  • Head each column with the quantity and the unit, separated by a solidus: temperature / °C, time / s, mass / g, volume / cm³.
  • Do not put units in the body of the table, only in the heading.
  • Record data to reflect the precision of the measuring instrument, and give every value in a column to the same number of decimal places.
  • For tests with no number, record the observation itself, for example 'blue-black' or 'stays orange-brown', not just 'positive'.
Badly drawn and well drawn table entries
FeatureBadly drawnWell drawn
Column headingTime (s) or Time or Secondstime / s
Heading for a calculated valueChangechange in mass / g
Data in the body45 s45
Decimal places in one column2.5, 2.48, 2.62.50, 2.48, 2.60
Qualitative resultpositivebrick-red precipitate
A well drawn results table: the effect of sucrose concentration on the mass of potato pieces
concentration of sucrose / mol dm⁻³mass at start / gmass at end / gpercentage change in mass / %
0.02.502.75+10.0
0.22.482.60+4.8
0.42.522.40−4.8
0.62.502.30−8.0

Precision follows the instrument. A stop-clock reading to 1 s gives whole seconds. A thermometer with 1 °C graduations gives readings to the nearest 1 °C. A ruler marked in mm gives lengths to the nearest mm. A balance reading to 0.01 g gives masses such as 2.50 g, so write the final zero.

Processing results

percentage change = (final value − starting value) ÷ starting value × 100

Percentage change in mass

A potato piece has a mass of 2.50 g at the start. After 30 minutes in a sucrose solution its mass is 2.20 g. Calculate the percentage change in mass.

  1. change in mass = 2.20 − 2.50 = −0.30 g
  2. divide by the starting mass: −0.30 ÷ 2.50 = −0.12
  3. multiply by 100: −0.12 × 100 = −12

Answer: −12 % (the minus sign shows the mass decreased)

Maths skill:

Always divide by the starting value, not the final value. Keep the + or − sign, because it shows whether the mass went up or down.

Written and checked against the Cambridge IGCSE Biology (0610) specification · Updated October 2026

Frequently asked questions

How do you calculate magnification in biology?

Magnification is calculated as image size divided by actual size. Measure the image, such as your drawing or a photograph, with a ruler in millimetres, and make sure both sizes are in the same unit. For example, a leaf 45 mm long drawn 135 mm long has a magnification of ×3. Magnification has no unit.

What is the difference between independent and dependent variables?

The independent variable is the one the scientist changes, and the dependent variable is the one observed or measured. Changing the independent variable may cause a change in the dependent variable. For example, in an enzyme experiment you change the temperature and measure the time taken for the starch to disappear. Other variables are controlled.

How do you draw a results table in biology?

Draw a ruled table with a border and lines between columns. Put the independent variable in the first column and the dependent variable, with repeats and the mean, in the next columns. Head each column with the quantity and unit separated by a solidus, such as time / s, and keep units out of the body.

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