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I'm trying to send some value from '1.php' page to '3.php' page by using 'curl'.

Heres my code-

1.php

<?php
$data = array();
$data['first_name'] = 'hello';
$data['last_name'] = 'Thind';
$data['password'] = 'secret';
$data['email'] = 'me@abc.com';
$post_str =''; 
foreach($data as $key=>$val)
{ $post_str .= $key.'='.$val.'&'; } 
$post_str = substr($post_str, 0, -1);
$ch = curl_init();
curl_setopt($ch, CURLOPT_URL, '3.php' );
curl_setopt($ch, CURLOPT_POST, TRUE); 
curl_setopt($ch, CURLOPT_POSTFIELDS, $post_str);
curl_setopt($ch, CURLOPT_RETURNTRANSFER, TRUE);
$result = curl_exec($ch);
curl_close($ch);
echo $result;
?>

3.php

<?php
$host="localhost";       
$dbname="mr"; 
// mysql code for table= create table m(name varchar(10));
$username="";            
$password="";
$con=mysql_connect("$host","$username","$password")or die("cannot connect");
mysql_select_db($dbname) or DIE('cannot select db');
if(isset($_POST['first_name'])){
$name=$_POST['first_name'];
$sql="insert into m
values('$name')";
$sq=mysql_query($sql);
echo"ok";
}
mysql_close($con);
?>

My problem is "No data is inserted into database cause no data is transfered to 3.php from 1.php" .I checked database code in '3.php' by giving some value and that was inserted correctly into database.So code in '3.php' works well.So it seems the code in '1.php' not working.
(Note: php_curl.dll is activated in php.ini file. I'm using windows xp professional service pack-2, xampp-win32 version-1.8.1)

Can anybody please tell me whats wrong there ?

-Thanks.

share|improve this question

closed as too localized by Ja͢ck, Alessandro Minoccheri, Toon Krijthe, j0k, Graviton Nov 26 '12 at 3:43

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.

2  
Use PDO or MySQLi to access database. mysql_* functions are being deprecated. –  lukedays Nov 22 '12 at 3:35

2 Answers 2

up vote 4 down vote accepted

curl_setopt($ch, CURLOPT_URL, '3.php' );

This requests the URL 3.php... You must give it some "hints" as cURL is an external program that will simply call the URL as is.

Change it to something like http://mysite.whatever/3.php


On a side note, cURL is a command-line utility and it's way easier to debug if used that way. You should first test-it command line and then, if it's workign, implement it on your PHP code.

Mode on cURL here: http://curl.haxx.se/docs/manpage.html

share|improve this answer
    
Thanks for your help...I changed '3.php' to 'http:// localhost/3.php' and now I got response from '3.php' and thats printed on '1.php'. But no data is inserted into database. Could you please tell me what can I do ? –  user1826381 Nov 22 '12 at 3:53
    
Its working now.Thank you so much. –  user1826381 Nov 22 '12 at 4:03

RESOLVED
Heres the complete code (according to Frankie's help)

1.php

<?php
$data = array();
$data['first_name'] = 'hello';
$data['last_name'] = 'Thind';
$data['password'] = 'secret';
$data['email'] = 'me@abc.com';
$post_str =''; 
foreach($data as $key=>$val)
{ $post_str .= $key.'='.$val.'&'; } 
$post_str = substr($post_str, 0, -1);
$ch = curl_init();
curl_setopt($ch, CURLOPT_URL, 'http://localhost/3.php' ); // Heres the change 'http://localhost/3.php' instead of '3.php' . See on Frankie's reply.
curl_setopt($ch, CURLOPT_POST, TRUE); 
curl_setopt($ch, CURLOPT_POSTFIELDS, $post_str);
curl_setopt($ch, CURLOPT_RETURNTRANSFER, TRUE);
$result = curl_exec($ch);
curl_close($ch);
echo $result;
?>

3.php

<?php
$host="localhost";       
$dbname="mr"; 
// mysql code for table= create table m(name varchar(10));
$username="";            
$password="";
$con=mysql_connect("$host","$username","$password")or die("cannot connect");
mysql_select_db($dbname) or DIE('cannot select db');
if(isset($_POST['first_name'])){
$name=$_POST['first_name'];
$sql="insert into m
values('$name')";
$sq=mysql_query($sql);
echo"ok";
}
mysql_close($con);
?>
share|improve this answer
    
Please make notes in your answer noting what you changed from the original code so it's easier to understand. –  sachleen Nov 22 '12 at 4:11
    
Code edited ... –  user1826381 Nov 22 '12 at 4:26

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