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Please check here is my code

int asciiCode = @"29 78 D8 BB 35 12 63 D5 C3 4B 18 D5 52 6B C2 83";
NSString *strings = [NSString stringWithFormat:@"%c", asciiCode];
NSLog(@"%c",strings);
}

if the value of 29 78 D8 BB 35 12 63 D5 C3 4B 18 D5 52 6B C2 83 it should display as india is my string value but it is displaying as )xÿª5c’√K’Rk¬É

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3 Answers

int asciiCode = @"29 78 D8 BB 35 12 63 D5 C3 4B 18 D5 52 6B C2 83";

This is invalid. @"..." is a NSString, not an int.

You could have a char array, like this:

char *asciiCode = {0x29, 0x78, 0xD8, 0xBB, ...}

Which you could turn into a NSString using

NSString *strings = [NSString stringWithCString:asciiCode usingEncoding:NSUTF8StringEncoding];
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You cannot initialize a char * using an array initializer. –  trojanfoe Jun 1 '12 at 12:25
    
Well, a char[] so... –  Cyrille Jun 1 '12 at 12:27
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The characters you have shown aren't ASCII, as they have their 8th bit set, but they could be UTF-8 encoded? If so, you simply need to treat them like a NUL-terminated C-String:

unsigned char cstr[] = { 0x29, 0x78, 0xD8, 0xBB, 0x35, 0x12, 0x63, 0xD5, 0xC3,
                         0x4B, 0x18, 0xD5, 0x52, 0x6B, 0xC2, 0x83, 0x0 };
NSString *string = [[NSString alloc] initWithUTF8String:cstr];
NSLog(@"%@",string);

or:

NSString *string = [NSString stringWithUTF8String:cstr];
NSLog(@"%@",string);

Depending on whether you want a retained or autoreleased NSString object.

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You could also prepend your character codes with \x. For example:

NSString *string = @"\x29 \x78 \xD8 \xBB \x35 \x12 \x63 \xD5 \xC3 \x4B \x18 \xD5 \x52 \x6B \xC2 \x83";
NSLog(@"%@",string);

But beware that the codes should be in hexadecimal. for example, 29 here is hexadecimal 29 (0x29) not in decimal.

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