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Which of these two for loops is more efficient in terms of time and cache performance

Below are two programs that are almost identical except that I switched the i and j variables around. They both run in different amounts of time. Could someone explain why this happens?

Version 1

#include <stdio.h>
#include <stdlib.h>

main () {
  int i,j;
  static int x[4000][4000];
  for (i = 0; i < 4000; i++) {
    for (j = 0; j < 4000; j++) {
      x[j][i] = i + j; }
  }
}

Version 2

#include <stdio.h>
#include <stdlib.h>

main () {
  int i,j;
  static int x[4000][4000];
  for (j = 0; j < 4000; j++) {
     for (i = 0; i < 4000; i++) {
       x[j][i] = i + j; }
   }
}
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marked as duplicate by Ilmari Karonen, Jarrod Roberson, Vitalii Fedorenko, Reactormonk, KillianDS Mar 30 '12 at 22:32

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

16  
en.wikipedia.org/wiki/… –  Brendan Long Mar 30 '12 at 2:21
4  
Can you add some benchmark results? –  naught101 Mar 30 '12 at 3:25
3  
13  
@naught101 The benchmarks will show a performance difference of anywhere between 3 to 10 times. This is basic C/C++, I'm completely stumped as to how this got so many votes... –  TC1 Mar 30 '12 at 9:12
6  
@TC1: I don't think it's that basic; maybe intermediate. But it should be no surprise that the "basic" stuff tends to be useful to more people, hence the many upvotes. Moreover, this is a question that's hard to google, even if it is "basic". –  LarsH Mar 30 '12 at 18:50

7 Answers 7

up vote 342 down vote accepted

As others have said, the issue is the store to the memory location in the array: x[i][j]. Here's a bit of insight why:

You have a 2-dimensional array, but memory in the computer is inherently 1-dimensional. So while you imagine your array like this:

0,0 | 0,1 | 0,2 | 0,3
----+-----+-----+----
1,0 | 1,1 | 1,2 | 1,3
----+-----+-----+----
2,0 | 2,1 | 2,2 | 2,3

Your computer stores it in memory as a single line:

0,0 | 0,1 | 0,2 | 0,3 | 1,0 | 1,1 | 1,2 | 1,3 | 2,0 | 2,1 | 2,2 | 2,3

In the 2nd example, you access the array by looping over the 2nd number first, i.e.:

x[0][0] 
        x[0][1]
                x[0][2]
                        x[0][3]
                                x[1][0] etc...

Meaning that you're hitting them all in order. Now look at the 1st version. You're doing:

x[0][0]
                                x[1][0]
                                                                x[2][0]
        x[0][1]
                                        x[1][1] etc...

Because of the way C laid out the 2-d array in memory, you're asking it to jump all over the place. But now for the kicker: Why does this matter? All memory accesses are the same, right?

No: because of caches. Data from your memory gets brought over to the CPU in little chunks (called 'cache lines'), typically 64 bytes. If you have 4-byte integers, that means you're geting 16 consecutive integers in a neat little bundle. It's actually fairly slow to fetch these chunks of memory; your CPU can do a lot of work in the time it takes for a single cache line to load.

Now look back at the order of accesses: The first example is (1) grabbing a chunk of 16 ints, (2) modifying all of them, (3) repeat 4000*4000/16 times. That's nice and fast, and the CPU always has something to work on.

The second example is (1) grab a chunk of 16 ints, (2) modify only one of them, (3) repeat 4000*4000 times. That's going to require 16 times the number of "fetches" from memory. Your CPU will actually have to spend time sitting around waiting for that memory to show up, and while it's sitting around you're wasting valuable time.

Important Note:

Now that you have the answer, here's an interesting note: there's no inherent reason that your second example has to be the fast one. For instance, in Fortran, the first example would be fast and the second one slow. That's because instead of expanding things out into conceptual "rows" like C does, Fortran expands into "columns", i.e.:

0,0 | 1,0 | 2,0 | 0,1 | 1,1 | 2,1 | 0,2 | 1,2 | 2,2 | 0,3 | 1,3 | 2,3

The layout of C is called 'row-major' and Fortran's is called 'column-major'. As you can see, it's very important to know whether your programming language is row-major or column-major! Here's a link for more info: http://en.wikipedia.org/wiki/Row-major_order

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5  
This is a pretty thorough answer; it's what I was taught when dealing with cache misses and memory management. –  Makoto Mar 30 '12 at 3:40
7  
You have the "first" and "second" versions around the wrong way; the first example varies the first index in the inner loop, and will be the slower executing example. –  caf Mar 30 '12 at 5:39
22  
+1 For a crazy good answer. –  Qw4z1 Mar 30 '12 at 9:12
5  
Bonus points for pointing out that C changed the row order from Fortran. For scientific computing L2 cache size is everything because if all your arrays fit into L2 then computation can be completed without going to main memory. –  Michael Shopsin Mar 30 '12 at 15:26
2  
@birryree: The freely-available What Every Programmer Should Know About Memory is also a good read. –  caf Mar 30 '12 at 22:38

Nothing to do with assembly. This is due to cache misses.

C multidimensional arrays are stored with the last dimension as the fastest. So the first version will miss the cache on every iteration, whereas the second version won't. So the second version should be substantially faster.

See also: http://en.wikipedia.org/wiki/Loop_interchange.

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Version 2 will run much faster because it uses your computer's cache better than version 1. If you think about it, arrays are just contiguous areas of memory. When you request an element in an array, your OS will probably bring in a memory page into cache that contains that element. However, since the next few elements are also on that page (because they are contiguous), the next access will already be in cache! This is what version 2 is doing to get it's speed up.

Version 1, on the other hand, is accessing elements column wise, and not row wise. This sort of access is not contiguous at the memory level, so the program cannot take advantage of the OS caching as much.

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With these array sizes, probably the cache manager in the CPU rather than in the OS is responsible here. –  krlmlr Mar 30 '12 at 8:59

The reason is cache-local data access. In the second program you're scanning linearly through memory which benefits from caching and prefetching. Your first program's memory usage pattern is far more spread out and therefore has worse cache behavior.

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Besides the other excellent answers on cache hits, there is also a possible optimization difference. Your second loop is likely to be optimized by the compiler into something equivalent to:

  for (j=0; j<4000; j++) {
    int *p = x[j];
    for (i=0; i<4000; i++) {
      *p++ = i+j;
    }
  }

This is less likely for the first loop, because it would need to jump the pointer "p" with 4000 each time.

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This line the culprit :

x[j][i]=i+j;

The second version uses continuous memory thus will be substantially faster.

I tried with

x[50000][50000];

and the time of execution is 13s for version1 versus 0.6s for version2.

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I try to give a generic answer.

Because i[y][x] is a shorthand for *(i + y*array_width + x) in C (try out the classy int P[3]; 0[P] = 0xBEEF;).

As you iterate over y, you iterate over chunks of size array_width * sizeof(array_element). If you have that in your inner loop, then you will have array_width * array_height iterations over those chunks.

By flipping the order, you will have only array_height chunk-iterations, and between any chunk-iteration, you will have array_width iterations of only sizeof(array_element).

While on really old x86-CPUs this did not matter much, nowadays' x86 do a lot of prefetching and caching of data. You probably produce many cache misses in your slower iteration-order.

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