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I have a couple of easy problems.

First I am trying to get names from database where surname='lion'. I wrote php a file but it didn't work:

$con = mysql_connect("localhost","yata_ali","password");

if (!$con){
   die('error: ' . mysql_error());    
}

mysql_select_db("yatanada_iBess", $con);

$degisken = mysql_query("select name from people where  surname LIKE '%lion%'");

if(mysql_query){
   return "$degisken";
}  

 mysql_close($con);

?>

I wrote this code and tried to use $degisken in my xcode project. But it didn't work. shortly i am trying to use the names whichs surname =lion in my ios project and i know i should use url.but i couldn find the code part that return name what shall i write at the end of php code ? return or something else to use in xcode. how can i send response in php? i wonder that. what shall i write "return $name" or something else. i know call url. but i dont know whats the full php code that i shall use

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4  
Your second question should be a) a separate post and b) should explain what you're trying to accomplish and what steps you've taken so far to accomplish these steps. –  tkone Feb 20 '12 at 22:00
    
The OP should consider changing his database password, as it seems, username, password, dbname are listed here and the domain name is visible in his profile. –  SimonMayer Feb 21 '12 at 19:25
    
I notice you have edited out your password in the question. I hope you will change your actual password. Users here can still see the original post, so your database may be vulnerable. –  SimonMayer Feb 21 '12 at 23:10

4 Answers 4

You can't use PHP in an iOS project. You'll need to write some objective-c to call a URL on a server which returns this data in some sort of format (xml? json?) and then have the iOS app parse the response.

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how can i send response in php? i wonder that. what shall i write "return $name" or something else. i know call url. but i dont know whats the full php code that i shall use. –  ali10 Feb 21 '12 at 9:16
    
i use json metod. –  ali10 Feb 21 '12 at 10:27
    
You need to a) set up a web server that runs PHP that can talk to the machine mysql is running on. b) write a script that generates JSON from a data set returned by mysql. c) write an iOS app, in objective-c, that calls that URL that returns the JSON (from steps a and b) and then parses the response and uses it. If you'd like help with any of these steps, please post a question about a specific issue you're having with something you've tried. –  tkone Feb 21 '12 at 13:10

I don't think you understand how to use the mysql_* functions in PHP. Take a look at the examples on this page for guidance: http://www.php.net/manual/en/function.mysql-query.php

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$degisken= mysql_query("select name from people where surname='lion'");

if ($degisken){

  while($row = mysql_fetch_assoc($degisken))
  {
     echo $row["name"] . "<br/>";
  }
}
share|improve this answer
    
i need use $name in my xcode project. i meaned i need end of code.Ok i got data from table but how my url can use it? what shall i write return or somethng else? i think echo isnt enough –  ali10 Feb 21 '12 at 11:14

There are a lot of errors, in your code, but the most serious are that

  • (a) you are running an invalid test:

    if (mysql_query){ //YOU CANNOT DO THIS

  • (b) You cannot return "$degisken"; because $degisken is a MySQL resource, not a string.

  • (c) You should not close your mysql connection after returning something. You don't necessarily need to close it at all, but if you're going to, close it after the query because anything after the return won't be evaluated (assuming the return is triggered).
  • (d) If you're looking for cases where the surname='lion' then don't use wildcards in the MySQL query. where surname LIKE '%lion%' will match 'scalion','lioness','slioner', etc.

Your code should look something like this:

$con = mysql_connect("localhost","yatanada_ali","sifre");
if (!$con) {
    die('error: ' . mysql_error());
}

mysql_select_db("yatanada_iBess", $con);

$degisken = mysql_query("select name from people where surname LIKE '%lion%'") or die('Error: '. mysql_error());

if (mysql_num_rows($degisken)){
   //your query could return lots of results, so you may want to loop through results:
   while($row = mysql_fetch_array($query)){
       $name = $row['name'];
       //do something with the name... I'm going to echo it.
       echo  $name . "<br />";
   }
} 
share|improve this answer
    
thanks code is succesfull. but i asked omething else. i need use $name in my xcode project. i know when i need add data in mysql i sholud use post or get but i dont know how can i use data in mysql table. so i think i need php code like return $name. and i will call this code in my xcode project as url. –  ali10 Feb 21 '12 at 9:13
    
You can use echo json_encode($name) (if there is one name, or if you want to report an array of names you can create a variable $names=array() and in the while loop just $names[]=$name. Then, once the loop completes say echo json_encode($names). If you're calling it as a URL, you'll need to have a webserver running as well, but just echoing the encoded data is all you'll need to do. (return only returns data internally... it does not output to the browser/request agent) –  Ben D Feb 21 '12 at 14:29
    
Ok Ben. i have a quetion. i did what you told. and there is my code:<?php // $con = mysql_connect("localhost","yatan","pass"); if (!$con) { die('Baglanti saglanamadi: ' . mysql_error()); }mysql_select_db("yatanada", $con); $degisken= mysql_query("select name from people where surname LIKE '%lion%'"); while($row = mysql_fetch_array($degisken)) { echo json_encode($row); } mysql_close($con); ?> –  ali10 Feb 21 '12 at 21:52
    
What's your question? You've gotten very close, but you should put all of your results into a multidimensional array and encode that (unless you have a parser that can understand multiple seperate JSON objects). I'm guessing, however, that you should just: $multi_array = array();while($row = mysql_fetch_array($degisken)){$multi_array[] = $row;} echo json_encode($multi_arra); –  Ben D Feb 21 '12 at 22:23

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