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I have a query like this:

$query = "SELECT * FROM dados_kirin WHERE BEBIDA = '$_POST[t_bebida]' AND UF = '$_POST[t_UF]' AND CANAL = '$_POST[t_canal]' AND ANO = '$_POST[t_ano]'";

The query above will not run OK, because t_bebida can be ALL.

I want to treat the $_POST. If it is ALL, it must be translated to *.

I've tried something like:

= $_POST[t_bebida] = $bebida;
if ($bebida = "Todos") {
    $bebida = '*'
    };

But dreamweaver tells me that it's wrong.

Someone know a way to do that?

I'm using PHP and MYSQL.

Thank you guys!

UPDATE:

I've tried this:

$t_bebida = $_POST[t_bebida];
if ($t_bebida == "Todos") {
    $t_bebida = '*';
    }

But I've made a horrible query structure.

I think that what I need, is:

if ($t_bebida == "Todos"), don't use BEBIDA in WHERE clause.

$query = "SELECT * FROM dados_kirin WHERE BEBIDA = '$_POST[t_bebida]' AND UF = '$_POST[t_UF]' AND CANAL = '$_POST[t_canal]' AND ANO = '$_POST[t_ano]'";

UPDATE 2

I am sorry, but this question have some MySQL structural errors in query. Thanks for all the efforts to try help me out. Meanwhile I'll fix it.

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closed as off-topic by mario, Mosty Mostacho, andrewsi, coolguy, Tushar Gupta Nov 18 '13 at 6:02

This question appears to be off-topic. The users who voted to close gave this specific reason:

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And the semicolon is placed redundantly, belongs behind the inner assignment. That would satisfy PHPs syntax and possibly Dreamweaver. –  mario Nov 18 '13 at 2:17
    
Thanks @mario, it helped. –  Ycavazin Nov 18 '13 at 2:35
    
@Ycavazin, Have you tested my answer? –  Christian Mark Nov 18 '13 at 2:43
    
Not only are the mysql_* functions deprecated, as Christian Mark mentioned,but the way you have your query set up is wide open for sql injection attacks. Sanitize any input coming from the user. –  Matthew Johnson Nov 18 '13 at 2:43

2 Answers 2

There are multiple error in your syntax:

$_POST[t_bebida] = $bebida;
if ($bebida = "Todos") {
    $bebida = '*'
    };

1st: variable assignment of your $bebida:

$bebida = $_POST[t_bebida];

2nd: $_POST variable should be:

$bebida = $_POST['t_bebida']; //assuming that in your form you have an input name=t_bebida

3rd: In your if statement, this should be:

if ($bebida == "Todos") {

4th: Missing semicolon on your expression:

$bebida = '*';
             ^ here

5th: You don't have to put semicolon on your if statement's closing curly braces. Now here's the final version:

$bebida = $_POST['t_bebida'];
if ($bebida == "Todos") {
    $bebida = '*';
}

Update

I also noticed that the $_POST variable in your query is improperly accessed like in the 2nd item. Also you have to sanitized your post variables to prevent SQL Injection.


Just in case:

Note that the mysql extension is now deprecated and will be removed sometime in the future. That's because it is ancient, full of bad practices and lacks some modern features. Don't use it to write new code. Use PDO or mysqli_* instead.

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Thanks @Christian, I'll read about PDO or mysqli, I don't even know it. –  Ycavazin Nov 18 '13 at 2:46

Your comparison operator is wrong. You're using = which is an assignment operator. In your example it will always be true. You need to use == which is a comparison operator.

if ($bebida = "Todos") {

should be

if ($bebida == "Todos") {
share|improve this answer
    
Thanks @John, but i still have the problem. –  Ycavazin Nov 18 '13 at 2:46

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