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I have a code like this:

<?php

$kode ["J"]= array (20, C, D, F);
$kode ["K"]= array (50, B, G, U);
$kode ["T"]= array (70, V, W);

function kota ($start, $end){
    if (is_array($kode)) {
        foreach ($kode as $kota => $path){
            if ($kota=$end) {
                for ($i=1; $i < count ($kota); $i++){
                    $jalur=$start.$path[$i];
                }
            }
        }
        return $jalur;
    }
}
$start = "J";
$end = "T";
$hasil=kota ($start, $end);
echo "".$hasil;
?>

I want the output to be J-V-W
I don't know what is wrong, can anyone help me? please...

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10  
don't you mean if($kota==$end)? (note the double =) –  Rumpelstilz Feb 1 '13 at 13:05
4  
You're not passing the array $kode as argument to the function –  asprin Feb 1 '13 at 13:06
2  
The foreach works, but you're using it wrong (passing string instead of array). –  Vlad Preda Feb 1 '13 at 13:08
1  
Also $jalur=$start.$path[$i]; should be $jalur.=$start.$path[$i]; (note the .= which means to append) –  asprin Feb 1 '13 at 13:12
    
thanks so much for your answer.. i'm newbie in programming, so i dont know lot of things –  Anna Feb 1 '13 at 13:38
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5 Answers

up vote 0 down vote accepted

Your code has lots of issues

  1. As others pointed out, in if ($kota=$end) {, you are assigning $end to $kota and always return true i.e. the code in the IF clause always execute

  2. PHP has function scope. Simply put, variables declared inside a function cannot be used outside, and vice versa. Use parameters to pass your $kode into the function.

  3. Use of bare strings i.e. V and W in $kode ["T"]= array (70, V, W); and other places. This is highly recommended against, and PHP does warn you about this.

  4. As other pointed out, $jalur=$start.$path[$i]; would overwrite $jalur every time. The for-loop outside is meaningless. You would use .= the append-to operator. Note that you also need to initialize your variable before using this operator.

  5. $kota is always a string in your code, because in a foreach loop, the variable before => symbol means get the key of the array, and array keys can only be either String or integer. That said, for ($i=1; $i < count ($kota); $i++){ is meaningless because count($kota) cannot be greater than 1 - your for loop actually never runs.

  6. This is blatantly meaningless to append a variable with an empty string as in echo "".$hasil;

I guess this is what you want.

<?php

$kode ["J"] = array (20, 'C', 'D', 'F');
$kode ["K"] = array (50, 'B', 'G', 'U');
$kode ["T"] = array (70, 'V', 'W');

function kota ($kode, $start, $end){
    $jalur = $start;
    if (is_array($kode)) {
        foreach ($kode as $kota => $path){
            if ($kota == $end) {
                for ($i = 1; $i < count($path); ++$i) {
                    $jalur .= '-' . $path[$i];
                }
            }
        }
        return $jalur;
    }
}
$start = "J";
$end = "T";
$hasil = kota($kode, $start, $end);
echo $hasil;
?>

This code give you the string which starts with $start and all other elements except the first element in $kode[$end]

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yea... i just don't know how to write my idea into a code. i just start learning php. thanks so much for ur explanation. that's really help me to learn –  Anna Feb 1 '13 at 13:52
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Syntatical errors

Looks like you forgot to use the equality operator ==

if ($kota = $end){ ... }

Should be -

if ($kota == $end){ ... }

By using only one equals sign you are actually assigning a value to $kota, not comparing the value to $end as should be done in conditional expressions.

I don't think this is the only thing that is causing trouble here.. but it definitely should be sorted out :)


Variable scope

Another thing I noticed in your code is that you are referencing variables within the kota function that were not defined in it's scope. This means that the $kota array is not accessible within the kota function. You should pass the $kota array to the function so that you can use it within scope of the function. Here is some more info on variable scopes in PHP.


Naming conventions

One final note on your variable name choice... You should possibly think of changing the variable $kota or function kota so that their names are not identical. This will help improve readability and perhaps prevent some mistakes at 4am when you've been debugging the whole night ;)

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And to add $kota=$end will always be true, so your code will go on all the time. –  Dainis Abols Feb 1 '13 at 13:08
    
@dai - the code I posted was originally given by the OP. I was showing which line was problematic... –  Lix Feb 1 '13 at 13:09
1  
oh.. i didn't notice.. thanks –  Anna Feb 1 '13 at 13:30
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On the line

if ($kota=$end){

you are not comparing, but overwriting the value in $kota, and that is always true.

Also the $kode is not available in the function scope, try adding it to the parameter list, or using global (not advised).

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You need to either pass $kode into your function as an argument or call global $kode; inside your function. I'd recommend the former.

Additionally, if ($kota=$end) needs to be if ($kota==$end) as others have mentioned.

share|improve this answer
    
yeah.. i didn't notice. ^.^'a –  Anna Feb 1 '13 at 13:39
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Not sure, that $jalur=$start; is on the correct place, but this script gives what you want:

<?php

$kode ["J"]= array (20, 'C', 'D', 'F');
$kode ["K"]= array (50, 'B', 'G', 'U');
$kode ["T"]= array (70, 'V', 'W');

function kota ($start, $end){
      global $kode;

      if(is_array($kode)){

            foreach ($kode as $kota => $path){

                  if ($kota == $end){
                        $jalur=$start;
                        for ($i=1; $i < count ($path); $i++){
                              $jalur .= "-" . $path[$i];
                        }
                  }
            }
            return $jalur;
      }
}
$start  = "J";
$end    = "T";
$hasil=kota ($start, $end);
echo $hasil;
?>
share|improve this answer
    
you are right.. $jalur=$start is not in the correct place. thanks so much.. ^_^ –  Anna Feb 1 '13 at 13:33
    
@Anna ok, tell me where it should be. I'll fix my answer and we'll close the question. –  user4035 Feb 1 '13 at 13:39
    
no.. it's not like that.. this program is just a simulation. $start can be anything. so, it doesn't matter –  Anna Feb 1 '13 at 13:46
    
@Anna if my code is ok plz, mark as solved –  user4035 Feb 1 '13 at 14:26
    
can i mark more than 1? –  Anna Feb 1 '13 at 14:51
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