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I am a new on php. Experimenting a lot with this. I wrote another code. But it showing error on line 26. I am unable to find the problem. Please check it out and tell me what the problem was. result.php

    <?php
if (isset ($_POST["name"])){
    $name=$_POST["name"];
}
if(isset ($_POST["yob"])){
    $yob=(int) $_POST["yob"];
}
if(isset ($_POST["wifename"])){
    $wifename=$_POST["wifename"];
}
if(isset ($_POST["wyob"])){
    $wyob= (int) $_POST["wyob"];
}
$currentyear=date("Y");
if($yob>=$currentyear){
    echo "Sorry {$name} you have not born yet.";
}
if($currentyear>$yob){
    $husbandage=$currentyear-$yob;
}
if($wyob>=$currentyear){
    echo "Sorry {$name} your mother in law is still virgin.";
}
else{$wifeage=$currentyear-$wyob;}
if($husbandage>$wifeage){
    echo "You are {"$husbandage-$wifeage"} years older than your wife";
}
if($husbandage<$wifeage){
    echo "You are {$wifeage-$husbandage} years older than your wife";}
    if($husbandage==$wifeage){
        echo "You and your wife are same age";}

?>

agecalculator.php

<html>
<title>Age Difference Calculator</title>
<body>
<form action="result.php" type="post">
    Your Name: <input type="text" name= "name"><br/>
    Year Of Birth: <input type= "text" name:"yob"><br/>
    Your Wife's Name: <input type="text" name="wifename"><br/>
    Your Wife's Year Of Birth: <input type="text" name="wyob"><br/>
    <input type="submit">
</form> 
</body>
</html>
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closed as too localized by hakre, tereško, CSᵠ, hjpotter92, andrewsi May 4 '13 at 2:17

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

3  
what is the error? –  Dinesh Apr 28 '13 at 23:50
2  
What is {int}$_POST["yob"];? Try (int)$_POST["yob"] –  mash Apr 28 '13 at 23:50
    
Ok i fixed it. But now the problem arised on line 24. Please tell me what mistake i have made at line 24? –  supto Apr 28 '13 at 23:59
    
(int) value instead of {int} value, meaning casting the "value" into integer value. –  vlzvl Apr 28 '13 at 23:59
1  
remove the last ";" from the 24th line, and add it after the $wyob –  vlzvl Apr 29 '13 at 0:00

2 Answers 2

the problem is

{int}

it should be

(int)
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Maybe you should change

$yob={int} $_POST["yob"];

For this:

$yob=(int) $_POST["yob"];
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