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I'm a newbie so be kind :) In Javascript, how do I add to a variable the current entry from an array? See my code below.

    <?php
        $array = mysql_query(SELECT column1 FROM table1 WHERE column2='$entry'); 
                                           //this returns several entries

        <script>
            var array=<?=json_encode($array)?>;   // the      
            var data={mouse:mickey, rabbit:roger};
                $.each(array, function(){
                        $.post('dostuff.php',data+','+{array[this]}); // <-- not sure
                        });
        </script>
    ?>

My question is about the data sent in the "post" jquery command. how do I add the current database entry and send it as part of the data sent in the ajax request. I wrote it roughly, but I'm confident it isn't right the way I wrote it here.

Thanks!

share|improve this question
    
i know it won't that's why I'm asking :) –  Lucy Weatherford Dec 24 '11 at 1:38

2 Answers 2

up vote 1 down vote accepted

You can add properties directly to your data object. Also note that the supplied function for each can take an index, and a value parameter.

var array=<?=json_encode($array)?>;   // the      
var data={mouse:mickey, rabbit:roger};
 $.each(array, function(index, value){
      data.whatEverYouWantToNameThis = value;
      $.post('dostuff.php', data); 
 });
share|improve this answer
    
great thanks! that's what I was looking for! –  Lucy Weatherford Dec 24 '11 at 1:41
    
i get the syntax now, that's awesome. will this insert the current entry of the array into the post's data? or do i have to do that somehow separately? –  Lucy Weatherford Dec 24 '11 at 1:46
    
Well data is what you're posting, so adding a property to data will add a property to what you're posting. Am I understanding you correctly? –  Adam Rackis Dec 24 '11 at 1:49
    
Okay I get it now, "value" is extracted using the "each" function, and then it's inserted into the "data". awesome! great, tnx :-) –  Lucy Weatherford Dec 24 '11 at 1:52
    
@LucyWeatherford - precisely. Good luck! –  Adam Rackis Dec 24 '11 at 1:53

How do I fetch the data from MySQL?

mysql_query returns a handle to be used to actually fetch the result (kind of like a file handle when reading files).

You should use mysql_fetch_array which will give you a row from the result set, or false when you have reached the end.

Remember that the returned array from mysql_fetch_array will contain values with a number as key, as well as the field name as a key, you are probably only interested in the latter; then you should use mysql_fetch_assoc:

// please remember to sanitize $entry before using it in a SQL query.
$result = mysql_query ("SELECT column1 FROM table1 WHERE column2='$entry'");

$query_data = array ();

while (($row = mysql_fetch_assoc ($result)) !== false) {
  $query_data[] = $row;
}

...

<script>
  var array = <?=json_encode ($query_data);?>;

...

I read your post again, if you are only interested in the value of a single row and a single column then you should use mysql_fetch_field (pass it your $result from mysql_query).

That function will return the value in the first column (in your case field1).

Wrap this value in an array and use json_encode before giving it to your javascript.


Documentation


How do I iterate over the array in javascript?

The callback sent to jQuery.each can optionally take two parameters.

  1. the index of the current entry
  2. the value of the current entry

With this knowledge you could write your function as:

$.each(array, function(idx, value){
  $.post('dostuff.php',[data, value]); 
});

// or.. (depending on what you wanna do)

var post_data = $.extend ({}, data, {array_data: array});

$.post ('dostuff.php', post_data);
share|improve this answer
    
thank you for the clarification –  Lucy Weatherford Dec 24 '11 at 1:41
    
You don't need to use a loop, check out my edit.. –  Filip Roséen - refp Dec 24 '11 at 1:46
    
I actually need the loop for the rest of the code's logic(it's in another loop and not all entries will actually run). but I like the "extend" function, cool! tnx for the help :) –  Lucy Weatherford Dec 24 '11 at 1:53
    
Well, you are welcome.. even though I didn't even get an up-vote. but I'll leave my answer around for a while, someone else might appreciate it later. –  Filip Roséen - refp Dec 24 '11 at 1:58
    
I can't upvote anyone... too little reputation :( –  Lucy Weatherford Dec 24 '11 at 2:25

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