A/B Test Sample Size Calculator
Free CalculatorFind how many visitors each variant needs to detect your target uplift β at 95% significance and 80% power. Instant and private.
100% private
Runs in your browser β no numbers leave your device.
Your test parameters
Your current conversion rate (control).
The smallest RELATIVE uplift you want to detect (e.g. 20% = 5% β 6%).
Sample size per variant
8,146
Visitors each variant (A and B) needs before you can trust the result at 95% significance / 80% power.
Total sample size
16,292
Both variants combined (A + B).
Target conversion rate (B)
6.00%
The rate variant B must reach to hit your uplift.
How it works
Enter your baseline
Add your current (control) conversion rate.
Set the uplift
Enter the minimum relative improvement you want to detect.
Read the sample size
See the visitors needed per variant, updated live.
Plan the test
Divide by your daily traffic to estimate how long to run it.
Give every test a stronger variant
Reverze generates A/B screenshot variants so your tests compare real, distinct creative.
How does an A/B test sample size calculator work?
An A/B test sample size calculator tells you how many visitors each variant needs before a result is trustworthy. It works backward from three things: your baseline conversion rate, the minimum uplift you want to be able to detect, and your confidence and power targets. This tool fixes the two conventional targets β 95% statistical significance (a 5% false-positive rate) and 80% power (a 20% chance of missing a real effect) β and solves the two-proportion formula for the sample size per variant.
The smaller the effect you want to detect and the lower your baseline rate, the more traffic you need β often dramatically more. That is why bold creative changes are easier to prove than tiny tweaks: a bigger expected uplift needs a smaller sample. Enter realistic numbers, then divide the per-variant sample by your daily traffic to see how many days the test must run before you stop peeking and call it.
Frequently asked questions
How does an A/B test sample size calculator work?
What is the minimum detectable effect?
Why do I need so many visitors?
How long should I run my A/B test?
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