Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have an issue that I can't solve (I don't know how cause I'm a newbie in php and js). I have a text field and I want on blur trigger a function in js. My problem is that I want to pass a parameter in tnis function, which will get from a query. My test code is :

<script type="text/javascript">
  function calcNums(nums){
    var inText = "00.00";
    if (document.expences.mytext.value != inText){
    var mp = parseInt(nums.substr(0,2));
    var lp = parseInt(nums.substr(3,2));
    document.expences.mytext2.value = lpdeh*parseInt(document.expences.mytext.value)/100; 
    document.expences.mytext.value = mpdeh*parseInt(document.expences.mytext.value)/100; 
    } 
  }
</script>

<?php

    $selNums = "SELECT DEH_NUMS FROM BUILDING WHERE idBUILDING = '3'";
    $nums = mysql_query($selNums) or die("Could not execute query.");
    <input type="text" name="mytext" id="mytext"  value="00.00" onblur="calcNums($nums)"/>
    <input type="text" name="mytext2" id="mytext2"  value="00.00"/>
?> 

My point is : I get $nums that is of type '50-50' (represents percentages). Get the initial value of "mytext" and calculate new values for "mytext" and "mytext2". example : $nums='60-40' initialMytext=100 --> new mytext=60 mytext2=40

If I put an inner var in calcNums() calculations are correct, but with the parameter is not triggered.

Can someone help? Thanks in advance!

share|improve this question
    
I want to know how I can pass the parameter to event onblur="calcNums($nums) –  Olga Anastasiadou Jan 23 '11 at 16:30

2 Answers 2

up vote 1 down vote accepted

write this and it will fix

<script type="text/javascript">
  function calcNums(nums){
    var inText = "00.00";
    if (document.expences.mytext.value != inText){
    var mp = parseInt(nums.substr(0,2));
    var lp = parseInt(nums.substr(3,2));
    document.expences.mytext2.value = lpdeh*parseInt(document.expences.mytext.value)/100; 
    document.expences.mytext.value = mpdeh*parseInt(document.expences.mytext.value)/100; 
    } 
  }
</script>

<?php
    $selNums = "SELECT DEH_NUMS FROM BUILDING WHERE idBUILDING = '3'";
    $results = mysql_query($selNums);
    if (!$results) die("Could not execute query.");

    $row = mysql_fetch_assoc($results);
    $nums = $row['DEH_NUMS'];
?>
<input type="text" name="mytext" id="mytext"  value="00.00" onblur="calcNums('<?php echo $nums;?>')"/>
<input type="text" name="mytext2" id="mytext2"  value="00.00"/> 
share|improve this answer
    
I did this and instead of "60-40" that brings back my query, it gets "20" now. –  Olga Anastasiadou Jan 23 '11 at 16:48
    
@Olga: I think you have few errors in your code is well I am editing my reply check it out I think it will help –  shankhan Jan 23 '11 at 16:53
    
I wrote your code but results are the same. My query brings $nums='60-40' but when I put alert(nums) in calcNums, I get '20'! How is this possible???? –  Olga Anastasiadou Jan 23 '11 at 17:15
    
Are you using '<?php echo $nums;?>'... SINGLE QUOTATION... it should make it string and you should get nums as string in data. Can you check your page source what you are getting in browser for onblur="calcNums('???')" –  shankhan Jan 23 '11 at 17:20
    
Sorry and thanks for your time and help. I didn't notice quotes! how stupid I am??? –  Olga Anastasiadou Jan 23 '11 at 17:24

You're mixing HTML in PHP. Do something like this:

<?php
$selNums = "SELECT DEH_NUMS FROM BUILDING WHERE idBUILDING = '3'";
$nums = mysql_query($selNums) or die("Could not execute query.");
?>
<input type="text" name="mytext" id="mytext"  value="00.00" onblur="calcNums(<?php $nums ?>)"/>
<input type="text" name="mytext2" id="mytext2"  value="00.00"/>
share|improve this answer
    
Inputs are off php block. I tried "calcNums(<?php $nums ?>)" (this I didn't know before) and it gives me an undefined field when I put alert(nums) in my function. Can you tell me why? –  Olga Anastasiadou Jan 23 '11 at 16:36
    
gives me "Resource id #9". Don't know what does this mean. In mysql the query returns the correct result. –  Olga Anastasiadou Jan 23 '11 at 16:40
    
$selNums = "SELECT DEH_NUMS FROM BUILDING WHERE idBUILDING = '3'"; $res = mysql_query($selNums) or die("Could not execute query."); $row = mysql_fetch_array($res); $nums = $row['DEH_NUMS']; I found out what was wrong. This sould be my code. Thanks –  Olga Anastasiadou Jan 23 '11 at 16:44
    
@Olga Anastasiadou gives me "Resource id #9" actually what you get after mysql_query is result set you have to parse it using any of provide methods like while($row=mysql_fetch_array($res)) { $return[] = $row; } –  Harish Jan 23 '11 at 17:12

Your Answer

 
discard

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.