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I want to create weather informer that shows weather forecast by visitor's IP.
I'm trying to place variable $ip to the URL but it doesn't work. When I place real IP instead of .$ip. it works.
What am I doing wrong?

$ip=$_SERVER['REMOTE_ADDR'];
$ch = curl_init();
curl_setopt($ch, CURLOPT_URL, "http://free.worldweatheronline.com/feed/weather.ashx?key=xxxxxxxxxxxxxxx&q=.$ip.&localObsTime&num_of_days=5&format=json");
curl_setopt($ch, CURLOPT_RETURNTRANSFER, 1);
curl_setopt($ch, CURLOPT_HEADER, 0);
$outputJson = curl_exec($ch);
 if ($outputJson === FALSE) {
 echo 'Error: '.curl_error($ch);
 }

 echo '<pre> ';
 print_r($outputJson);   
 echo '</pre> ';  
share|improve this question
    
when you do print_r do you have the correct output at least ? – Tarek Jun 25 '11 at 12:36
    
@Tarek Yes, It returns json data (if IP is real, not a variable) – Vera Jun 25 '11 at 12:42
up vote 2 down vote accepted

You have got some unnecessary dots before and after $ip:

Use any of following:

"http://...$ip..."
"http://...{$ip}..."
"http://..." . $ip . "...";
share|improve this answer

you don't need to concatenate the string since you're using doublequotes. so you either do:

curl_setopt($ch, CURLOPT_URL, "http://free.worldweatheronline.com/feed/weather.ashx?key=xxxxxxxxxxxxxxx&q=$ip&localObsTime&num_of_days=5&format=json");

in the url.

share|improve this answer

you are using the string concatenation operator inside the string. either use

"http://free.worldweatheronline.com/feed/weather.ashx?key=xxxxxxxxxxxxxxx&q=$ip&localObsTime&num_of_days=5&format=json"

or

'http://free.worldweatheronline.com/feed/weather.ashx?key=xxxxxxxxxxxxxxx&q='.$ip.'&localObsTime&num_of_days=5&format=json'
share|improve this answer

Try doing

curl_setopt($ch, CURLOPT_URL, "http://free.worldweatheronline.com/feed/weather.ashx?key=xxxxxxxxxxxxxxx&q=".$ip."&localObsTime&num_of_days=5&format=json");
share|improve this answer
    
because of the double quotes that has no effect. – Yasser Souri Jun 25 '11 at 12:40

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