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I have a list of arrays and need them to output with a printf statement

<?php
$example = array("first" => "Bob", "last" => "Smith", "address" => "123 Spruce st" );
$example = array("first" => "Sara", "last" => "Blask", "address" => "5678 Maple ct" );

foreach ($example as $key => $val) {
  printf("<p>hello my name is %s %s and i live at %s</p>",$example['first'],$example['last'], $example['address']);
}

?> 

The above just outputs the last array, i need it to loop through all of the arrays and produce a <p> with the supplied key => value combinations. this is only a simplified example as the real world code will be more complex in the outputted html

I tried

foreach ($example as $arr){
printf("<p>hello my name is %s %s and i live at %s</p>",$arr['first'],$arr['last'], $arr['address']);
}

but it only outputs a single character for each key => value

share|improve this question
3  
You're declaring $example twice - the second one will over-write the first one. That definitely won't help. –  andrewsi Sep 11 '12 at 18:45

4 Answers 4

up vote 2 down vote accepted

Try something like this:

// Declare $example as an array, and add arrays to it
$example = array();
$example[] = array("first" => "Bob", "last" => "Smith", "address" => "123 Spruce st" );
$example[] = array("first" => "Sara", "last" => "Blask", "address" => "5678 Maple ct" );

// Loop over each sub-array
foreach( $example as $val) {
    // Access elements via $val
    printf("<p>hello my name is %s %s and i live at %s</p>",$val['first'],$val['last'], $val['address']);
}

You can see from this demo that it prints:

hello my name is Bob Smith and i live at 123 Spruce st
hello my name is Sara Blask and i live at 5678 Maple ct
share|improve this answer
    
Awesome that's what i was missing declaring $example as an array! thank you. and +1 for the demo! –  danferth Sep 11 '12 at 18:53
    
You're welcome! Just to clarify, it is not required to declare it as an array, as doing $example[] will implicitly create $example as an array. However, it is my preference and a general best-practice to define variables before you use them. –  nickb Sep 11 '12 at 18:54

You need to declare example as an array as well to get a 2-dimensional array and then append to it.

$example = array();
$example[] = array("first" => "Bob", "last" => "Smith", "address" => "123 Spruce st" ); # appends to array $example
$example[] = array("first" => "Sara", "last" => "Blask", "address" => "5678 Maple ct" );
share|improve this answer

You're overwriting $example on both lines. You need a multi-dimensional "array of arrays:"

$examples = array();
$examples[] = array("first" ...
$examples[] = array("first" ...

foreach ($examples as $example) {
   foreach ($example as $key => $value) { ...

Of course, you can also do the printf immediately instead of assigning the arrays.

share|improve this answer

You'll have to make an array of your arrays and loop through the main array:

<?php

$examples[] = array("first" => "Bob", "last" => "Smith", "address" => "123 Spruce st" );
$examples[] = array("first" => "Sara", "last" => "Blask", "address" => "5678 Maple ct" );

foreach ($examples as $example) {
  printf("<p>hello my name is %s %s and i live at %s</p>",$example['first'],$example['last'], $example['address']);
}

?> 
share|improve this answer

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