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I have a NSData item that is holding a bunch of ints. How do I go about getting them out and into an NSArray?

The memory structure in the NSData is 32-bit int in little-endian order, one right after the other.

Sorry for the basic question, but still learning the obj-c way of doing things :)

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4 Answers 4

up vote 12 down vote accepted

You can use the functions defined in OSByteOrder.h to deal with endianness. Aside from that quirk, this is really just a matter of grabbing the byte buffer and iterating over it.

// returns an NSArray containing NSNumbers from an NSData
// the NSData contains a series of 32-bit little-endian ints
NSArray *arrayFromData(NSData *data) {
    void *bytes = [data bytes];
    NSMutableArray *ary = [NSMutableArray array];
    for (NSUInteger i = 0; i < [data length]; i += sizeof(int32_t)) {
        int32_t elem = OSReadLittleInt32(bytes, i);
        [ary addObject:[NSNumber numberWithInt:elem]];
    }
    return ary;
}
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I've used this code in my project and it works well. –  Justin808 Feb 1 '11 at 10:39

This answer is very similar to other answers above, but I found it instructive to play with casting the NSData bytes back to an int32_t[] array. This code works correctly on a little-endian processor (x64 in my case) but would be silently wrong on big-endian (PPC) because the byte representation would be big-endian.

int32_t raw_data[] = {0,1,2,3,4,5,6,7,8,9,10};
printf("raw_data has %d elements\n", sizeof(raw_data)/sizeof(*raw_data));
NSData *data = [NSData dataWithBytes:(void*)raw_data length:sizeof(raw_data)];
printf("data has %d bytes\n", [data length]);
int32_t *int_data_out = (int32_t*) [data bytes];
for (int i=0; i<[data length]/4; ++i)
    printf("int %d = %d\n", i, int_data_out[i]);
[data release];
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Sounds like there are cleaner ways to do what you're trying to do, but this should work:

NSData *data = ...; // Initialized earlier
int *values = [data bytes], cnt = [data length]/sizeof(int);
for (int i = 0; i < cnt; ++i)
  NSLog(@"%d\n", values[i]);
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One possible solution below. To take endianness into account, look up Core Endian Reference in the XCode doc set (you probably would use EndianS32_LtoN (32 bit litte endian to native endianness)).

int mem[]= {0x01, 0x02, 0x03, 0x04, 0xff};


NSData * data = [NSData dataWithBytes:mem length:sizeof(mem)*sizeof(int)];
NSMutableArray * ar = [NSMutableArray arrayWithCapacity:10];

/* read ints out of the data and add them to the array, one at a time */
int idx=0;
for(;idx<[data length]/sizeof(int);idx+=sizeof(int))
       [ar addObject:[NSNumber numberWithInt:*(int *)([data bytes] + idx)]];

NSLog(@"Array:%@", ar);
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Do you mean int32_t? Isn't this code broken on x64? –  Chris Dolan Feb 1 '11 at 7:46
1  
I think int is still 4 bytes long on x86_64. It's long that matches the word size. Or more specifically, int is compiler-dependent, but in gcc and clang on all architectures Cocoa supports, it will be 4 bytes. Still, int32_t would be more appropriate (and you can see what's what I used in my answer). –  Kevin Ballard Feb 1 '11 at 7:49
    
I wrote the code on x86_64 - int is still 4 bytes long. But you are both right, int32_t is more appropriate. –  diciu Feb 1 '11 at 7:54
    
NSInteger is the one that changes for x86_64 –  Nils Ziehn Jan 24 at 22:44

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