开发者

A bad result of the comparison - PHP

I have a function that connects to the database and returns a number and a second function, which returns the size of a file. If I use the echo function to view the results functions: variable1 = 1开发者_运维百科345064, and variable2 = 135

,but when I use a comparison, go me incorrect result:

if($variable1 < $variable2)

{

   echo 'This code is displayed';

}

else

{

   echo 'This code should display';

}

what's wrong?


My source code:

<?php
include 'funkcje.inc';
    $login = $_GET['login'];
            $fsize = WielkoscPliku2($file);

    $tmp = $fsize / 1000000;

$zmienna1 = SprTransfer($login);
$zmienna2 = floor($tmp);

      if($zmienna1 < $zmienna2)
    {
        echo "This code is displayed";  
    }
    else
    {
            echo "This code should be displayed";
         }
    ?>

SprTransfer function:

<?php
require "connection.php";
connection(); 

...

function SprTransfer($login)
{
$zapytanie = "SELECT `transfer` FROM `uzytkownicy` WHERE `nick`='$login'";
    $idzapytania = mysql_query($zapytanie);
    $sprwaznosc = mysql_fetch_row($idzapytania);
    return $sprwaznosc[0];
}
?>

Main file:

include 'funkcje.inc';

    $login = $_GET['login'];

            $fsize = WielkoscPliku2($file);


    $tmp = $fsize / 1000000;


$zmienna1 = SprTransfer($login);

$zmienna2 = floor($tmp);


      if($zmienna1 < $zmienna2)

    {

        echo "This code is displayed";



    }

    else

    {

            echo "This code should be displayed";

         }




function.inc file:


require "connection.php";

connection(); 



function SprTransfer($login)

{

$zapytanie = "SELECT `transfer` FROM `uzytkownicy` WHERE `nick`='$login'";

    $idzapytania = mysql_query($zapytanie);

    $sprwaznosc = mysql_fetch_row($idzapytania);

    return $sprwaznosc[0];


}


You are using variable names wrong. A variable needs to be preceded by a $.

$variable1 = 4;
$variable2 = 5; 

if ($variable1 < $variable2) {
    echo 'Yep';
}else {
    echo 'Nope';
}

You should look into the basic syntax of PHP namely the Variables Section.


maybe the $ before variables:

if($variable1 < $variable2)


I'm not sure how, but it looks like you are interpreting your numbers as strings.

For example this will display This code is displayed:

<?php

    $variable1 = "1345064a";
    $variable2 = "135a";
    if ($variable1 < $variable2) {
        echo "This code is displayed";
    }
    else {
        echo "This code should be displayed";
    }

    // Output: This code is displayed
?> 

exmple


Cast your variables to int

<?php

    $variable1 = "1345064a";
    $variable2 = "135a";
    if ((int) $variable1 < (int) $variable2) {
        echo "This code is displayed";
    }
    else {
        echo "This code should be displayed";
    }

    // Output: This code should be displayed
?>  

example


Debugging:

You can check the type of your variables using gettype(). You should never use the output of gettype() to test for one particular type, since the output string is liable to change from one version of PHP to another.


assuming that missing the $ is just a typo ...

when you run into this type of problem, the best thing is to post a full working code sample. for example, the code below works as it should. it displays "This code should be displayed". what happens when you run it? what is the difference between this code and yours? answer those two questions and you'll be at least pointed to your answer:

<?php

    $variable1 = 1345064;
    $variable2 = 135;
    if ($variable1 < $variable2) {
        echo "This code is displayed";
    }
    else {
        echo "This code should be displayed";
    }
?>    
0

上一篇:

下一篇:

精彩评论

暂无评论...
验证码 换一张
取 消

最新问答

问答排行榜