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Is there any way I can prevent javascript from dropping an error if I try to go into a non existing array index?

Example: array[-1] would return error and eventually break all my code. How can I let it just return 'undefined' and let my script go on? I can implement an if statement before checking the array (so that if the index is minor than zero or major than the array size it would skip it) but this would be very tedious!

this is my code:

if (grid[j-1][i])
n++;
if (grid[j+1][i])
n++;
if (grid[j][i+1])
n++;
if (grid[j][i-1])
n++;
if (grid[j-1][i-1])
n++;
if (grid[j+1][i+1])
n++;
if (grid[j-1][i+1])
n++;
if (grid[j+1][i-1])
n++;

It is inside of two loops which both sees J and I starting from zero. I don't want to change them and neither writing another if statement (as you can see, there are already too much of them!). Is there any solution?

Thanks!

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1  
You do know you can write all those ifs with one if, right? –  gdoron Apr 22 '12 at 1:32
1  
@gdoron - I don't think it could (at least not neatly), since more than one rule could apply, and with an if, n would only be incremented once. A loop would work, but then you'd end up with 4 nested loops. –  Karl Nicoll Apr 22 '12 at 1:35
4  
@KarlNicoll how bout n+= !!grid[j-1][i] + !!grid[j+1][i] + ... –  d_inevitable Apr 22 '12 at 1:37
1  
@d_inevitable - Nice, but I wouldn't exactly call it "maintainer friendly" :P –  Karl Nicoll Apr 22 '12 at 1:42
2  
@Saturnix !!x "casts" a value to a boolean. It's a double negation. For a single negation see e.g. 11heavens.com/falsy-and-truthy-in-javascript –  Kay Apr 22 '12 at 1:46

6 Answers 6

up vote 1 down vote accepted

If you know the measures of your grid, you can put "sentinel cells" around it.

If you add a -1st index to an array x, it does not count to x.length. Putting an additional last element into the list would increment x.length.

I daresay using sentinel cells combined with the arithmetic counting algorithms mentioned by d_inevitable would be the fastest solution, since it would not involve branches. You even can omit the !! because true will evaluate to 1 and false to 0 in an equalization.

Update:

Do not use index -1. Its an awful lot slower that normal array indexes. See http://jsperf.com/index-1.

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you're right... using -1 index runs 20% slower –  Saturnix Apr 22 '12 at 3:12
    
sentinel cells did the trick here, thanks! :) –  Saturnix Apr 28 '12 at 1:14

You could use ||, which muffles errors, e.g.:

(grid[j-1] || [])[i] || false

(I haven't tested this, but it should work)

Edit: updated based on am not i am's suggestion

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1  
I think the idea is that grid[-1][i] will throw an error because you can't access [i] on undefined. The || won't help with that. –  squint Apr 22 '12 at 1:34
    
But it doesn't... Fiddle :) –  gdoron Apr 22 '12 at 1:35
3  
...you'd need to do something more like this... (grid[-1] || [])[i] –  squint Apr 22 '12 at 1:35
    
ah yes, thanks, I updated it –  Andrea Faulds Apr 22 '12 at 1:37
1  
Yep, except that you should be able to get rid of the || false, since when the empty array is used, the [i] will give undefined. –  squint Apr 22 '12 at 1:41

A less tedious way while still using ifs would be checking the first index if it's defined:

if (typeof grid[j-1] != "undefined" && grid[j-1][i])
share|improve this answer

You could create a function to do the checks:

function getArrayValue(arr,key) {
    if( key < 0 || key >= arr.length) return null;
    return arr[key];
}

But really you should be avoiding out-of-bounds keys anyway.

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How about this for your solution?

for (dj = -1; dj <= 1; ++dj) {
  for (di = -1; di <= 1; ++di) {
    if ((dj || di) && grid[j+dj] && grid[j+dj][i+di]) {
        n++;
    }
  }
}   

If you refactor all those ifs into a single loop like the above, then having to do the extra conditional is not so bad.

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Why was this -1? I see nothing wrong with it. @downvoter: Please explain why MarkReed's answer is wrong. –  squint Apr 22 '12 at 2:34

I would do this:

for(m = Math.max(j-1,0) ; m <= Math.min(j+1,grid.length-1) ; m++)
  for (p = Math.max(i-1,0) ; p <= Math.min(i+1, grid[m].length-1) ; p++)
     n += !(m == j && p == i) && !!grid[m][p];
share|improve this answer
    
Is it your intention to use n as the grid[m] index as well as the main n += ... counter? I'm not understanding it. –  squint Apr 22 '12 at 2:52
    
Oh shit,yea, n is already used for for something else. –  d_inevitable Apr 22 '12 at 2:54
    
@amnotiam, ok it should make sense more now. Thanks for pointing it out. –  d_inevitable Apr 22 '12 at 2:55
    
One more thing, I think you have your min and max reversed. –  squint Apr 22 '12 at 2:58
    
@amnotiam thanks again. Fixed it too now. –  d_inevitable Apr 22 '12 at 4:41

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