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I'm doing some A/B testing on a site of mine, and for various reasons I need a certain piece of content to appear for 1% of the page loads. In other words if the page is loaded 100 times, I would expect my special piece of content to have appeared once.

Using PHP what is the best way to do this?

I could use the rand() function and do something like if (rand(0,1)>=0.99){//Show content}

But is there a better or more reliable way?

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4 Answers 4

up vote 0 down vote accepted

I did something like this on a site I developed and it works perfectly. PHP is server side so its about as reliable as you’re going to get. I would do it this way:

<?php if (mt_rand(1, 100) === 100): ?>

// pure html content here

<?php endif ?>

EDIT:

The very nature of prabability means that given a large enough sample mt_rand(1, 100) will generate the number match you are looking for 1% of the time. You can do fancy databases or flat files to force the odds, but this is unnecessary as you just need to trust the mersenne twister that is does generate your odds correctly.

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In other words if the page is loaded 100 times, I would expect my special piece of content to have appeared once. In your case its just random.. It could show the special content multiple times –  Bondye May 16 '13 at 14:36
    
So, it must load only a maximum of 1 time in 100 loads? Is that all loads or loads per IP? –  Phillip May 16 '13 at 14:37
    
I don't know, It is not in the question :) –  Bondye May 16 '13 at 14:38

Actually it is not about PHP but more about strategy of doing it.

If you need it to appear exactly for 1% of views, you can use counters with Redis or Memcached or in your database. - good if your aim is to control exactly number of view. - NB. if you use Redis or Mamcached, your counters will be reset after server or service restart.

What you proposed with rand() will work the same well but it will be near 1% but not exact 1%. Actually in long run it will move closer to 1%. - faster as does not require access to redis/memcached/database; - will appear more randomly, not exactly every 100th view.

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I would use a counter in a database or a file.

if(counter++ % 100 === 0) { // if var counter modulo 100 equals 0 (every 100 times)
    // load special piece?`
}
// Save counter somewhere
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I wouldn't go for a rand-solution, given this statement:

In other words if the page is loaded 100 times, I would expect my special piece of content to have appeared once.

You could potentially never get 99 from rand(0,100).

Create a very simple database table with one column - counter - and update it every hit. Include the piece of code every time the counter hits a multiple of 100.

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