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<form name="form1"/>

<input type="text" name="code1" value="D50" size="7" maxlength="10" onblur="chkidpro(this.value,'provider1');" />

<input type="text" name="code2" value="" size="7" maxlength="10"/>

<form/>

<script type="text/javascript">

var jvalue = form1.code1.value;

<?php $abc = "<script>document.write(jvalue)</script>"?>

</script>

<?PHP $con = mysql_connect("localhost","abc_one","PASS");

mysql_select_db("abc_one", $con);

$c= "D50";

$jval = $abc;

$result2 = mysql_query("SELECT * FROM tblprocode where code='". $c."';");

$tab = mysql_fetch_array($result2);

$fld1 = $tab['card'];

mysql_close($con);

?>

<?php echo $jval; ?>

<?php echo $fld1; ?>

if i replace $result2 = mysql_query("SELECT * FROM tblprocode where code='". $jval."';");

<?php echo $abc; ?> // its print as D50

<?php echo $jval; ?> // its print as D50

<?php echo $fld1; ?> // its not print, its blank

if i replace $result2 = mysql_query("SELECT * FROM tblprocode where code='". $c."';");

<?php echo $abc; ?> // its print as D50

<?php echo $jval; ?> // its print as D50

<?php echo $fld1; ?> // its print record data

please help me what is the wrong??

share|improve this question

I think you should use trim function $jval = trim($abc);

share|improve this answer
    
Thank you for your help, its not success, <?PHP $con = mysql_connect("localhost","abc_one","pass"); mysql_select_db("abc_one", $con); echo 'abc is_' .$abc; echo 'abc is_' .$abc; // ITS DISPLAY AS abc is_D50abc is_D50 so no TRIM ISSUE $result2 = mysql_query("SELECT * FROM tblprocode where code='". $c ."';"); $tab = mysql_fetch_array($result2); $fld1 = $tab['card']; mysql_close($con); ?> <?php echo $jval; ?> // ITS PRINT AS D10 <?php echo $fld1; ?> // ITS BLANK – user2235050 Apr 2 '13 at 12:03
    
**THANK YOU FOR HELP, BUT ITS NOT SUCCESS**echo 'abc is_' .$abc; echo 'abc is_' .$abc; // ITS DISPLAY AS abc is_D50abc is_D50 so no TRIM ISSUE – user2235050 Apr 2 '13 at 12:04

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