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I have 2 functions, in the first one I generate a bidimensional array and in the second one I define an array minus the last line and column. However it does not work. The code is as follows:

function calcDet () {   
    var A = [];     //generates the array
    for (var i = 0; i < k; i++) {
        A[i] = [];
        for (var j = 0; j < k; j++) {   
            var id = "A" + (i + 1) + (j + 1);                   
            A[i][j] =  parseFloat(document.getElementById(id).value);               
        }
     }   
     return (A); 
}
function returnDet() {            
    var s;
    var A = calcDet();
    var smaller=[];                
    for (var i=0;i<k-1;i++) {
        smaller[i]=A[i]             
        for (var j=0;j<k-1;j++) {
            smaller[i][j]=A[i][j];
        }
    }
    alert (smaller);
}
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why did you surround your return with bracket ? what your returnDet function output –  jbduzan May 18 '12 at 8:48
    
What are you trying to achieve exactly? –  benqus May 18 '12 at 8:49
    
the brackets are bec of speed and not paying attention. the default value of A is a 2 dimensional vector with all values 0. The returnDet() alerts only 0,0, that is only one line of A. Sorry for not mentioning that. –  viktor May 18 '12 at 8:52
    
the purpose of the code is to read values inserted dinamycally by the user and return an array that is one line smaller. –  viktor May 18 '12 at 8:53
    
The reason you're getting 0,0 alerted is because of the line smaller[i]=A[i]. Say k = 2 then A is a 2*2 array. This line will then cause the first element of s to be a array of length 2. The inner loop of your returnDet function will just change values in this array. –  geekchic May 18 '12 at 8:58

3 Answers 3

up vote 2 down vote accepted

Your code has undefined variables: "k" seems to appear out of nowhere in both functions

Line var id = "A" + (i + 1) + (j + 1); will generate identical id for (some) different variations of i and j ([i = 11 and j = 1] == [i = 1 and j = 11]) that may be a cause of further errors

And it is always useful if you mention the error that you are getting - I would expect that your scripts would not run at all as they are...

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+1 for mentioning the errorprone id generation. –  Bergi May 18 '12 at 9:08
    
+2 for that k is a global variable defined at the start of <script>it's value is afterwards inserted by user and read by another function. –  viktor May 18 '12 at 18:34

Your variable k, the length of the arrays, is defined nowhere. It should trow an error stating that.

You've got an error in your returnDet function. You first create the array smaller, then fill it with the "second-level" arrays from A:

    smaller[i]=A[i];

After that, you set each (except the last) of the values in smaller[i] to the value they already have:

    for (var j=0;j<k-1;j++) {
        smaller[i][j]=A[i][j];
    }

Yet, smaller[i][k-1] (the last one, which you don't want) still exists in the array, because both smaller[i] and A[i] point to the same object. What you want to do is:

function returnDet() {   
    var A = calcDet();
    var smaller = [];                
    for (var i=0; i<A.length-1; i++)
        smaller[i] = A[i].slice(0, -1);
    return smaller;
}
alert(returnDet());

Array.slice() copies the values from the array.

share|improve this answer
    
is it possible to declare it like this: var smaller = new array[A.lenght-1][A.length-1]; smaller[i][j]=A[i][j]; } for (var i=0; i<A.length-1; i++) smaller[i] = A[i].slice(0, -1); –  viktor May 18 '12 at 20:12
    
No. First, you can't declare multidimensional arrays like in Java, and second your for-loop seems to be invalid. –  Bergi May 20 '12 at 17:42

Using built-in language features makes the code simpler to write and understand and also more efficient.

function trim (arr, r, c) {
  // Return a new array omitting the last r rows and c columns
  //    of a two dimensional array arr
  //    if not specified r and c default to 1

  arr = arr.slice (0, -(r || 1)); // remove last r rows
  arr.forEach (function (v, i, a) { a[i] = v.slice (0, -(c || 1)); });
  return arr;
}

[JSON.stringify (trim ([[11, 12, 13], [21, 22, 23], [31, 32, 33]])),
 JSON.stringify (trim ([[11, 12, 13], [21, 22, 23], [31, 32, 33]], 1, 2)),
 JSON.stringify (trim ([[11, 12, 13], [21, 22, 23], [31, 32, 33]], 2, 1))]

/* Displays on JS console :
  ["[[11,12],[21,22]]", "[[11],[21]]", "[[11,12]]"]
*/
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