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i have this problem with the syntax here but i don't know what it is..

could you please help me out? it must be in the url... I guess there might be any error in the way i'm expressing it, because when i use a plain URL it works..

Thanks!

$url='http://testext.i-movo.com/api/receivesms.aspx?".$str_from.$str_zip.$phone.$str_time.$date1.$str_msg';
$ch = curl_init();
curl_setopt($ch, CURLOPT_URL, $url);
    curl_setopt($ch, CURLOPT_HEADER, 0);
curl_setopt($ch, CURLOPT_RETURNTRANSFER, 1);
$output = curl_exec($ch);
curl_close($ch);
return $output;
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2 Answers 2

You don't want to put the string concatenation inside the quote - instead, do it outside the quote. You're concatenating your variables (the query parameters) to the string literal (the URL) and the string literal, not the entire thing, is defined by the quotes. So take out the single quote at the end, and change the quotes around the string literal so that they match.

As far as which quote to use, the difference between single and double quotes in PHP (or one of the differences, but probably the most relevant) is that with double quotes, you can put variables in your string and they will be replaced with their values, whereas with single quotes, the names of the values will be taken literally. So if $name was "Andrew" and you did

"My name is $name"

The string would be My name is Andrew. However, if you did

'My name is $name'

The variable name would not be replaced with its value, and the resulting string would be My name is $name

In your case, you have two options. The first would be to use string concatenation, where the quotes you use wouldn't matter (this example could also use single quotes):

"http://testext.i-movo.com/api/receivesms.aspx?" . $str_from . $str_zip . $phone . $str_time . $date1 . $str_msg

The second would be to use variable replacement inside the string, which would look like

"http://testext.i-movo.com/api/receivesms.aspx?$str_from$str_zip$phone$str_time$date1$str_msg"

Also, I'm assuming here that your variables (except $str_from) all have the form &key=value. In your query parameters (that's the part after the question mark that specifies the options you're passing) you have to separate key/value pairs with & and the key and value themselves must be written as I specified above. So you would want the end result to look something like

http://testext.i-movo.com/api/receivesms.aspx?from=whatever&zip=27703&phone=5551234567&time=143295438&date=septemberfourteenth

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Well, i wouldn't know which to use, could you please write it for me ? –  blerta Sep 14 '12 at 22:08

Replace

$url='http://testext.i-movo.com/api/receivesms.aspx?".$str_from.$str_zip.$phone.$str_time.$date1.$str_msg';

with

$url="http://testext.i-movo.com/api/receivesms.aspx?".$str_from.$str_zip.$phone.$str_time.$date1.$str_msg;


Update
We actually need to see the values assigned to your variables as well and potentially a link to the API you're using. The URL's parameters will probably need to look something like

"from=" . $str_from . "&zip=" . $zip .. // etc
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It's strange that i doesn't work if i enter a link like this... if i instead use a link like www.google.com it works.. :/ –  blerta Sep 14 '12 at 22:09
    
Not really; echo out $url and you should see the problem. I suspect you're not separating your variables properly in that they need & between them as well. –  stealthyninja Sep 14 '12 at 22:11
    
The URL echoes just fine.. the issue is that apparently it won't work with Curl... :/ –  blerta Sep 14 '12 at 22:14

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