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I was working through the 160 byte BrainFuck code trying to figure out what things do, and I cant seem to figure out what 1[d=b] does.

s[99],*r=s,*d,c;main(a,b){char*v=1[d=b];for(;c=*v++%93;)for(b=c&2,b=c%7?a&&(c&17
?c&1?(*r+=b-1):(r+=b-1):syscall(4-!b,b,r,1),0):v;b&&c|a**r;v=d)main(!c,&a);d=v;}

Heres the code, its about midway through the first line
http://j.mearie.org/post/1181041789/brainfuck-interpreter-in-2-lines-of-c

I'm not asking what it does in that context but what 1[] does in the first place.

Thanks =)

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Just a guess, but if d represents an array (and I'm not completely sure, since I don't know BrainF*ck), then I suspect that 1[d=b] returns the second element of d (after assigning b to d). –  Jack Maney Aug 29 '11 at 16:52
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This isn't a dup per se but I know there are many other questions dealing with the arr[1] == 1[arr] thing. Alas, it is a tricky thing to Google. –  Chris Lutz Aug 29 '11 at 16:59
1  
Only Jon Skeet can parse this code. –  Second Rikudo Aug 29 '11 at 16:59
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3 Answers

up vote 23 down vote accepted

In C, there is no difference between x[7] and 7[x]. They both equate to *(x+7) (and *(7+x) since addition is commutative) which means the seventh element of the x array.

In this particular case (1[d=b]), you first assign the current value of b to d, then calculate 1[d] which is the same as d[1].

By doing it this way (offset[base] rather than base[offset]), it allows you to combine it with the assignment, otherwise you'd need:

d = b; char *v = d[1];

I suppose I shouldn't need to tell you that this is actually very bad code, as evidenced by the fact that you have to think very hard about what it means. Better code would be almost instantly decipherable.

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I think an alternative, but not sure if more understandable, would be char *v = (d=b)[1]; –  Soren Sep 4 '11 at 6:41
    
Very educational! –  Mansoor Siddiqui Sep 6 '11 at 4:58
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It indexes into the array/pointer d (which was just assigned the value of b). It is equivalent to

d=b;
char*v=d[1];

In c, arrays and pointers can be handled the same way in many respects; most notably that one can use pointer arithmetic the same way on both. d[1] is equivalent to *(d + 1), which is trivially equivalent to *(1 + d) - which in turn is equivalent to 1[d]!

Using the index notation may be more typical for array types, but (especially in obfuscated code contests ;-) both can be used on either type. Don't use such tricks in real, production code though... as you can testify, it can make future maintainers' life difficult :-(

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a[b] is *(a + b)
b[a] is *(b + a)

So

a[b] is b[a]

And

1[a] is a[1]

v=1[d=b] is d=b; v=d[1];

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