Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

So I have an array within an array. It is called r0w. Here's what it looks like:

r0w[0] = [1,38,0,63,20,39,1,36,36,36,34,35,35,36,36,37,1]
r0w[1] = [1,38,63,124,20,101,1,36,36,36,34,35,35,36,36,37,1]
r0w[2] = [1,38,124,185,20,162,1,36,36,36,34,35,35,36,36,37,1]
r0w[3] = [1,48,185,248,25,224,1,44,37,103,35,92,1]

Now I want to perform some calculations on these arrays within arrays and output it to another array within an array called absw1dth. Here is my code.

var absw1dth = [[]];

for (e=0 ; e < r0w.length ; e++ ) {
    absw1dth[e][0] = ( r0w[e][7] + r0w[e][1] );
    for (f=8 ; f < r0w[e].length ; f++ ) {
        absw1dth[e][f - 7] = (r0w[e][f] + absw1dth[e][f - 8]);
        };
    };

It keeps error-ing out at this line

absw1dth[e][0] = ( r0w[e][7] + r0w[e][1] );

and says undefined is not an object.

What am I doing wrong?

share|improve this question
add comment

3 Answers

up vote 2 down vote accepted

The problem is with the initialization of your abswidth. You've done this

var absw1dth = [[]];

...which will create an array with one element, another array with no elements. So when e is 1 (rather than 0), the expression absw1dth[e][0] is trying to index into an array abswidth[1] that doesn't exist.

If the data is as static as you've shown (there will always only be four rows in the r0w array), you could solve it with initialization:

var absw1dth = [ [], [], [], [] ];

Now abswidth is a four-element array, where each element is an empty array.

But if the data is more dynamic, I'd probably initialize on-the-fly:

var absw1dth = []; // Just an empty array

for (e=0 ; e < r0w.length ; e++ ) {
    abswidth[e] = []; // Create this element
    absw1dth[e][0] = ( r0w[e][7] + r0w[e][1] );
    for (f=8 ; f < r0w[e].length ; f++ ) {
        absw1dth[e][f - 7] = (r0w[e][f] + absw1dth[e][f - 8]);
        };
    };
    // ...
}

If it's possible that code you're not showing may have already created the array elements within abwidth, but also may not have, you can test first:

var absw1dth = []; // Just an empty array

for (e=0 ; e < r0w.length ; e++ ) {
    if (!abswidth[e]) {
        abswidth[e] = []; // Create this element
    }
    absw1dth[e][0] = ( r0w[e][7] + r0w[e][1] );
    for (f=8 ; f < r0w[e].length ; f++ ) {
        absw1dth[e][f - 7] = (r0w[e][f] + absw1dth[e][f - 8]);
        };
    };
    // ...
}

Or go all "functional programming" and use JavaScript's curiously-powerful || operator:

var absw1dth = []; // Just an empty array

for (e=0 ; e < r0w.length ; e++ ) {
    abswidth[e] = abswidth[e] || []; // Create this element if needed
    absw1dth[e][0] = ( r0w[e][7] + r0w[e][1] );
    for (f=8 ; f < r0w[e].length ; f++ ) {
        absw1dth[e][f - 7] = (r0w[e][f] + absw1dth[e][f - 8]);
        };
    };
    // ...
}
share|improve this answer
    
Awesome, awesome answer. I'd give this two votes if I could. I ended up using the first solution you provided, but find the other two very interesting. Saved that article for later, looks very handy. –  Lars Markelson Apr 20 '11 at 7:39
    
@Lars: LOL, glad that helped! –  T.J. Crowder Apr 20 '11 at 7:42
1  
+1 for the curiously-powerful || operator –  MarvinLabs Apr 20 '11 at 7:59
add comment

Try:

var absw1dth = [];

for (e=0 ; e < r0w.length ; e++ ) {
    absw1dth[e] = [];
    absw1dth[e][0] = ( r0w[e][7] + r0w[e][1] );
    //...
share|improve this answer
    
Yep, this is spot on! It's the same as Jarrett's answer, but the code is more visible. Thanks again. –  Lars Markelson Apr 20 '11 at 7:35
add comment

absw1dth[e][0] is not an object because absw1dth[e] is not an object yet.

Try absw1dth[e] = []; absw1dth[e][0] = ( r0w[e][7] + r0w[e][1] );

share|improve this answer
    
Amazing! This worked a charm. Thanks much. So in summary, by adding the absw1dth[e] = []; line in the first part of my for loop, it creates an array within an array, and not just one, it's dynamic since it's in the for loop. That was my problem I believe, I wasn't creating the array within the array properly. Therefore I couldn't properly populate it. –  Lars Markelson Apr 20 '11 at 7:31
    
Sounds like you get the idea of it. –  Jarrett Widman Apr 20 '11 at 7:38
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.