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NSString *string1 = @"\u03C0";
NSLog(@"string1: %@", string1);  // result of a Pi symbol

NSString *string2 = @"03C0";
NSString *string3 = [@"\\u" stringByAppendingString:string2];
NSLog(@"string3: %@", string3);  // result of \u03C0 but need it to be a Pi symbol as well

I would think string3 would give the same result as string1. But It does not. Any idea how to fix this?

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3 Answers 3

up vote 3 down vote accepted

When you type in a string literal with \u9999, this is treated as a special character literal by the compiler. The compiler will convert that syntax directly to the resulting character.

Your string3 is being handled at runtime. The \u9999 syntax has no special meaning at runtime.

You can do this:

NSString *string2 = @"03C0";
NSScanner *scanner = [NSScanner scannerWithString:string2];
unsigned int code;
[scanner scanHexInt:&code];
NSString *string3 = [NSString stringWithFormat:@"%C", (unsigned short)code];
NSLog(@"string3: %@", string3);

If you know the code is \u03C0 then you can use it directly:

NSString *string3 = [NSString stringWithFormat:@"%C", (unsigned short)0x03C0];
NSLog(@"string3: %@", string3);

Better yet, type it in directly:

NSString *string3 = @"π";
NSLog(@"string3: %@", string3);
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You need to use a bit of byte manipulation to get this NSScanner approach to work for higher unicode values > UFFFF... see stackoverflow.com/a/15133359/2308190 –  Benjamin Wheeler Jul 2 '14 at 17:24

\u03C0 is one single Unicode character, i.e. just another representation for the pi character. A string of the characters '\','u', etc. is a different thing.

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+1 for tell me the reason. –  user523234 Mar 14 '13 at 17:10

The answer lies in your question.

You say this as UNICODE Character \u03C0, not as UNICODE string.

Therefore as you use stringByAppendingString: it returns a string to string3, not the character.

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+1 for tell me the reason. –  user523234 Mar 14 '13 at 17:09

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