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I have an NSString in which I need to URL encode the & and not just the spaces, how do I do this?

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5 Answers 5

up vote 138 down vote accepted

Unfortunately, stringByAddingPercentEscapesUsingEncoding doesn't always work 100%. It encodes non-URL characters but leaves the reserved characters (like slash / and ampersand &) alone. Apparently this is a bug that Apple is aware of, but since they have not fixed it yet, I have been using this category to url-encode a string:

@implementation NSString (NSString_Extended)

- (NSString *)urlencode {
    NSMutableString *output = [NSMutableString string];
    const unsigned char *source = (const unsigned char *)[self UTF8String];
    int sourceLen = strlen((const char *)source);
    for (int i = 0; i < sourceLen; ++i) {
        const unsigned char thisChar = source[i];
        if (thisChar == ' '){
            [output appendString:@"+"];
        } else if (thisChar == '.' || thisChar == '-' || thisChar == '_' || thisChar == '~' || 
                   (thisChar >= 'a' && thisChar <= 'z') ||
                   (thisChar >= 'A' && thisChar <= 'Z') ||
                   (thisChar >= '0' && thisChar <= '9')) {
            [output appendFormat:@"%c", thisChar];
        } else {
            [output appendFormat:@"%%%02X", thisChar];
        }
    }
    return output;
}

Used like this:

NSString *urlEncodedString = [@"SOME_URL_GOES_HERE" urlencode];

// Or, with an already existing string:
NSString *someUrlString = @"someURL";
NSString *encodedUrlStr = [someUrlString urlencode];

This also works:

NSString *encodedString = (NSString *)CFURLCreateStringByAddingPercentEscapes(
                            NULL,
                            (CFStringRef)unencodedString,
                            NULL,
                            (CFStringRef)@"!*'();:@&=+$,/?%#[]",
                            kCFStringEncodingUTF8 );

Some good reading about the subject:

Objective-c iPhone percent encode a string?
Objective-C url encoding

http://cybersam.com/programming/proper-url-percent-encoding-in-ios
https://devforums.apple.com/message/15674#15674 http://simonwoodside.com/weblog/2009/4/22/how_to_really_url_encode/

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10  
Why on earth would you use a complicated category like this rather than just dropping down to CFURLCreateStringByAddingPercentEscapes(), where you can explicitly specify which characters you want to always escape. –  Kevin Ballard Nov 11 '11 at 1:25
1  
@KevinBallard I have the CFURLCreateStringByAddingPercentEscapes call in my answer also. –  chown Nov 11 '11 at 1:28
6  
@KevinBallard because the CF function works on an inclusive model ("escape these characters"), and usually you want to work on an exclusive model ("escape everything except these characters") –  Dave DeLong Nov 11 '11 at 3:12
53  
12  
@DaveDeLong That may be where I got it. Its been a standard category in all my projects for a year or so, so I imagine you may have been the original source! I've edited the wording so it doesnt seem like I am trying to take credit for writing it ). –  chown Nov 11 '11 at 3:26

This might be helpful

NSString *sampleUrl = @"http://www.google.com/search.jsp?params=Java Developer";
NSString* encodedUrl = [sampleUrl stringByAddingPercentEscapesUsingEncoding:
 NSUTF8StringEncoding];
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11  
NSUTF8StringEncoding is preferred these days.. –  Nishant Oct 3 '13 at 13:50
1  
This also doesn't correctly encode parameter delimiters like '&', '?' in the case where you are passing content into an API. –  Ben Lachman May 27 at 16:34
    
This doesn't work. This doesn't convert & into %26. –  coolcool1994 Jul 14 at 16:48
    
'&' is not a valid character for URL query string parameter. Please try to use '&amp;' instead. –  Nishant Jul 14 at 17:43

New APIs have been added since the answer was selected; You can now use NSURLUtilities. Since different parts of URLs allow different characters, use the applicable character set. The following example encodes for inclusion in the query string:

encodedString = [myString stringByAddingPercentEncodingWithAllowedCharacters:NSCharacterSet.URLQueryAllowedCharacterSet];

To specifically convert '&', you'll need to remove it from the url query set or use a different set, as '&' is allowed in a URL query:

NSMutableCharacterSet *chars = NSCharacterSet.URLQueryAllowedCharacterSet.mutableCopy;
[chars removeCharactersInRange:NSMakeRange('&', 1)]; // %26
encodedString = [myString stringByAddingPercentEncodingWithAllowedCharacters:chars];
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1  
It took me a while to figure out what you meant by "use NSURLUtilities" - but now I see that that is the name of the category of NSString in which Apple defined this new method in iOS 7 and OS X 10.9. –  Richard Venable Mar 21 at 21:41
    
There is a more elaborate answer like this here: stackoverflow.com/a/20271177/456366 –  Richard Venable Mar 21 at 21:43
    
Yup. It was also listed as NSURLUtilities in the listing of new APIs released. –  Peter DeWeese Mar 24 at 13:48
    
This doesn't work. This doesn't convert & into %26. –  coolcool1994 Jul 14 at 16:47
    
'&' is of course allowed in a query string, so I'll edit my answer using Richard's link. –  Peter DeWeese Jul 18 at 11:08

I opted to use the CFURLCreateStringByAddingPercentEscapes call as given by accepted answer, however in newest version of XCode (and IOS), it resulted in an error, so used the following instead:

NSString *apiKeyRaw = @"79b|7Qd.jW=])(fv|M&W0O|3CENnrbNh4}2E|-)J*BCjCMrWy%dSfGs#A6N38Fo~";

NSString *apiKey = (NSString *)CFBridgingRelease(CFURLCreateStringByAddingPercentEscapes(NULL, (CFStringRef)apiKeyRaw, NULL, (CFStringRef)@"!*'();:@&=+$,/?%#[]", kCFStringEncodingUTF8));
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It is not encoding space. Example @"string string" and @"string&string" is encoded properly. Please let me know your input on same. –  Yogesh.Lolusare.Apple Aug 12 at 5:26
2  
for me most of the time spent solving this was the denial period where I refused to believe the framework doesnt contain something named similar to 'urlencode' that does this without the messing around.. –  dancl Sep 6 at 16:28

Once you encode something using Base64 encoding you can make it url space by simply substituting + with - and / with _

stripStr = [encodedString stringByReplacingOccurrencesOfString:@"=" withString:@""];
stripStr = [stripStr stringByReplacingOccurrencesOfString:@"+" withString:@"-"];
stripStr = [stripStr stringByReplacingOccurrencesOfString:@"/" withString:@"_"];

stripStr now has padding removed and appropriate substitutions in place

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1  
The question is about URL-encoding a string. Base64 is just something else. –  Nikolai Ruhe Mar 8 '13 at 11:19

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