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here is yet another silly question from me!

NSString *hex1 = @"50be4f3de4";
NSString *hex2 = @"30bf69a299";

/* some stuff like result = hex1^hex2;    */

NSString *result = @"6001269f7d";

I have a hex value as a string, stored in two diff. variables. i need to Xor them and the result should be in another string variables?

i tried them by converting string --> NSData --> bytes array --> xor'ing them ...but i have no success..... thank you in advance...

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1 Answer 1

up vote 4 down vote accepted

You have to convert every character to Base16(for hexadecimal) format first.Then you should proceed with XORing those characters.You can use the strtol() function to achieve this purpose.

NSString *hex1 = @"50be4f3de4";
NSString *hex2 = @"30bf69a299";

NSMutableArray *hexArray1 = [self splitStringIntoChars:hex1]; 
NSMutableArray *hexArray2 = [self splitStringIntoChars:hex2]; 

NSMutableString *str = [NSMutableString new];
for (int i=0; i<[hexArray1 count]; i++ )
{
    /*Convert to base 16*/
    int a=(unsigned char)strtol([[hexArray1 objectAtIndex:i] UTF8String], NULL, 16);
    int b=(unsigned char)strtol([[hexArray2 objectAtIndex:i] UTF8String], NULL, 16);

    char encrypted = a ^ b;
    NSLog(@"%x",encrypted);
    [str appendFormat:@"%x",encrypted];        
}
NSLog(@"%@",str);

Utility method that i used to split characters of the string

-(NSMutableArray*)splitStringIntoChars:(NSString*)argStr{
NSMutableArray *characters = [[NSMutableArray alloc] 
                              initWithCapacity:[argStr length]]; 
for (int i=0; i < [argStr length]; i++) 
{ 
    NSString *ichar = [NSString stringWithFormat:@"%c", [argStr characterAtIndex:i ]]; 

    [characters addObject:ichar]; 
} 
return characters;

}

Hope it helps!!

share|improve this answer
    
Awesome dude, this is damn super and exactly what i wanted thanks again!!!!! –  Satheesh Jul 11 '12 at 7:01
    
@Satheesh Thanx! –  Mr.Anonymous Jul 11 '12 at 8:09
    
Hey Friend do you have any idea for my question stackoverflow.com/questions/11481782/… –  Satheesh Jul 14 '12 at 10:00
    
@Satheesh gimme some time.. ll try –  Mr.Anonymous Jul 16 '12 at 3:09
    
Sure take your time but if you try to get me 2day it will be much better....BTW ur good name? –  Satheesh Jul 16 '12 at 4:49

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