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I am having a hard time passing arrays from an PHP page to JavaScript using an AJAX request.

I will have to pass the information from multiple php arrays to javascript. I am aware I can use json_encode for this, however, I am having a hard time implementing this. The $name array don't seem to be getting passed, in addition, I will need all arrays to be passed to javascript not just $name.

I appreciate any suggestions with this.

Many thanks in advance!

This is what I tried for passing the $name array (code snippets):

PHP

while($row2 = mysqli_fetch_array($results2)){
    $name[$i] = $row2['prod_name'];
    $price[$i] = $row2['price'];
    $upc[$i] = $row2['upc'];
    $quantity[$i] = $row2['quantity'];
}
echo json_encode($name);

AJAX

$.ajax({
    url: "invoice-get-data.php?hotItems=1&getArrays=1",
    dataType: "json",
    success: function(data){
        alert(data[0]);
    }
});
share|improve this question
    
what does alert(data) gives? undefined? –  Artyom Neustroev Apr 14 '13 at 16:54
    
you alert name[0], yet you assign the successful return of the information to data... –  Jon Apr 14 '13 at 16:54
    
@ArtyomNeustroev, Thanks for the reply. Nothing gets alerted and no error messages... –  AnchovyLegend Apr 14 '13 at 16:59
    
Jon has a point you are attempting to pass an undefined variable, name, to alert. "Name" may exist on your server but not in your client-side javascript. I also noticed you don't appear to have defined $i or be incrementing it. –  Casey Flynn Apr 14 '13 at 17:00
    
@CaseyFlynn, thanks for the reply. Those are just code snippets, I also never defined $results2 or any of the arrays. Please assume they are all defined and working, the code posted just relates to the passing of arrays from php to javascript. –  AnchovyLegend Apr 14 '13 at 17:03
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2 Answers 2

Back-end:

while($row2 = mysqli_fetch_array($results2)){
    $name[] = $row2['prod_name'];
    $price[] = $row2['price'];
    $upc[] = $row2['upc'];
    $quantity[] = $row2['quantity'];
}
echo json_encode(array($name, $price, $upc, $quantity));

Front-end:

$.ajax({
    url: "invoice-get-data.php?hotItems=1&getArrays=1",
    dataType: "json",
    success: function(data){
        data = JSON.parse(data);
        alert(data[0]);
    }
});
share|improve this answer
    
Thanks for the reply. However, nothing gets alerted, and no error messages either. –  AnchovyLegend Apr 14 '13 at 16:58
    
@AnchovyLegend that's because, again, you assigning the return to data on success, but try alerting name, which is not assigned. –  Jon Apr 14 '13 at 16:59
    
@Jon, The problem described is after changing name to data. –  AnchovyLegend Apr 14 '13 at 17:00
    
@AnchovyLegend I have just updated post with JS-snippet for my version of PHP-code. You have forgotten JSON.parse(data) –  zavg Apr 14 '13 at 17:05
    
Thanks you @zavg, however, still nothing ever gets alerted, no errors, even after adding JSON.parse –  AnchovyLegend Apr 14 '13 at 17:07
show 2 more comments

$i does not seem to be changed in the while loop, so the last value constantly gets overwritten by the new value. you can use:

$name = array(); //setup array
while($row2 = mysqli_fetch_array($results2)){
    $name[] = $row2['prod_name']; //add to the end of the array
}
echo json_encode($name);

you could also use 'die' to echo your html code to be sure nothing else gets executed afterwards die(json_encode($name));

and your jquery returns the variable data so use data:

$.ajax({
    url: "invoice-get-data.php?hotItems=1&getArrays=1",
    dataType: "json",
    success: function(data){
        alert(data[0]);
    }
});
share|improve this answer
    
Thanks for the reply. No, $i is not constant, those are just code snippets. –  AnchovyLegend Apr 14 '13 at 16:53
    
Or just add $row2 as a whole instead of all the elements in separate arrays. –  Niels Keurentjes Apr 14 '13 at 16:53
3  
@AnchovyLegend with all due respect, if you summarize, do at least summarize to a working sample. Your posted code contains at least 2 bugs unrelated to your question and apparently related to your 'snippeting'. –  Niels Keurentjes Apr 14 '13 at 16:54
    
Why is this answer downvoted, it seems to answer the question correctly –  Casey Flynn Apr 14 '13 at 17:02
    
Thanks for the edit, even after these modifications, still nothing gets alerted, and no errors are produces :/ Any suggestions? –  AnchovyLegend Apr 14 '13 at 17:10
show 1 more comment

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