Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

Hi I would like to know if there is a good algorithm to the search of a substring inside an array that is inside another array,

I have something like:


        [0] => Array(
                    [0] => img src="1" /> 
                    [1] => img src="2" alt="" class="logo i-dd-logo" /> 
                    [2] => img src="3" alt="" /> 
                    [3] => img src="4" width="21" height="21" alt="" class="i-twitter-xs" /> 
                    [4] => img src="myTarget" width="21" height="21" alt="" class="i-rss" /> 
                    [5] => <img class="offerimage" id="product-image" src="6" title="" alt=""/> 
                    [6] => <img class="offerimage" id="product-image" src="7" title="" alt=""/> 
                    [7] => <img class="offerimage" id="product-image" src="8" title="" alt=""/> 
                    [8] => <img src="9" width="16" height="16" /> 

[1] => Array(
                    [0] =>  src="1" 
                    [1] =>  src="a" alt="" class="logo i-dd-logo" 
                    [2] =>  src="b" alt="" 


What I want to do is to know the position of target, for example [0][4] but it's not always the same

What I'm doing now is a while inside another while and checking whith strpos for the substring, but maybe there is a better way to do this, any suggestions?

Thanks for everything

Updated code:


foreach($img as$outterKey=>$outter) {

            foreach($outter as $innerKey=>$inner){

      $pos = strpos($img[$outterKey][$innerKey],"myTarget");
      if (!$pos === false) {
                  break 2;
share|improve this question
No...your solution sounds reasonable if you know it's always 2 layers deep. –  Mark Feb 11 '11 at 7:48
the problem is that for now it's only 2 layers deep but I would like to think in the posibility to scalate this :( –  Saikios Feb 11 '11 at 7:51
That array looks like you got it from a Regular Expression parsing HTML. In that case, drop the array and use an HTML parser. –  Gordon Feb 11 '11 at 8:21
Hi Gordon, indeed it's from a regex in html, but it isn't mine, I have to use that array =D I recieve the info and have to work with that as a parameter :) –  Saikios Feb 11 '11 at 8:34

2 Answers 2

up vote 0 down vote accepted

Umm, maybe like:

      foreach($outsideArray as $outterKey=>$outter) {
                foreach($outter as $innerKey=>$inner){
                   if(substr_count ($inner , $needle)) {
                         echo $outterKey . " and " . $innerKey;

EDIT: Scalable, I noticed in your comments you want it scalable. How about recursive?

function arraySearch($array) {
    foreach($array as $key=>$item){
            return arraySearch($item);
        elseif(substr_count ($item , $needle)
            return $key;
share|improve this answer
with this solution wouldn't I have to complete the two foreach even if I find the target on the 0,0? –  Saikios Feb 11 '11 at 7:52
Two whiles would be the same, I just think foreach is more elegant. A break would get out of the loop if found. –  Ginamin Feb 11 '11 at 7:55
Also, I saw above you wanted it scalable for levels of arrays in your comments. I posted a recursive solution for unknown subarray levels. –  Ginamin Feb 11 '11 at 7:56
You should use strpos() (stripos() to ignore case) instead of substr_count() since you only need to know if it's contained and not how many times. –  David Harkness Feb 11 '11 at 8:07
That is indeed true. –  Ginamin Feb 11 '11 at 8:16

try this code here you got the complete posistion of your string. here $find is your substring. $data is your array.

$find = "<img src='4' width='21' height='21' alt=' class='i-twitter-xs' />";
 foreach ($data as $out_key => $out_value) 
     if(in_array($find, $out_value))
        $out_pos = array_search($out_value, $data);
        $inn_pos =array_search($find, $out_value);
echo $data[$out_pos][$inn_pos];
share|improve this answer

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.