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I have an array with strings that I would like to traverse diagonally.
Assumptions:

  • Each string is the same length.
  • Arrays could be square or rectangular, horizontally or vertically.

The matrix looks like this:

A B C D
E F G H
I J K L

I Would like to get (from top left to bottom right):

A
EB
IFC
JGD
KH
L

and (from the bottom left to top right):

I
JE
KFA
LGB
HC
D

I already have a piece of code that works 3/4 of the way, but i cant seem to figure out what I am doing (wrong).

//the array
var TheArray = ['ABCD','EFGH','IJKL'];

//amount of rows
var RowLength = TheArray.length;
//amount of colums
var ColumnLength = TheArray[0].length;

The code I have chops up the diagonals into 4 of these loops to get all the diagonals. It looks as 2 for loops with an if to not loop over unbound values. The pseudo code looks a bit like this:

for(loop rows){
 var outputarray = [];
   for(loop columns){
      if(delimit for out of bound){
       var temprow = TheArray[something?];
       var tempvalue = temprow[something?];
       outputarray.push(tempvalue);
       }
   }
 //use values
document.getElementById("theDiv").innerHTML += outputarray.join("")+"<br>";
}

I hope somebody can help me with this.

share|improve this question

closed as off-topic by Jarrod Roberson, bmargulies, Nayuki, Downgoat, Hong Ooi Mar 11 at 9:10

This question appears to be off-topic. The users who voted to close gave this specific reason:

  • "Questions seeking debugging help ("why isn't this code working?") must include the desired behavior, a specific problem or error and the shortest code necessary to reproduce it in the question itself. Questions without a clear problem statement are not useful to other readers. See: How to create a Minimal, Complete, and Verifiable example." – Jarrod Roberson, bmargulies, Nayuki, Downgoat
If this question can be reworded to fit the rules in the help center, please edit the question.

1  
Just out of curiosity: Are you using an array of "strings" or an array of arrays? – goodguy5 Mar 10 at 13:35
1  
@goodguy5 it wouldn't matter because you can access string by index like arrays. – jcubic Mar 10 at 13:44
    
@jcubic precisely, It is an array with strings, not an array of arrays, and i am using the index to get the right value from the string. – viperia Mar 10 at 13:52
6  
Duplicate of homework questions: Traverse an array diagonally and Traversing a 2D array matrix diagonally – Roberto Mar 10 at 14:23
up vote 12 down vote accepted

From top left to bottom right

var array = ["ABCD","EFGH","IJKL"];

var Ylength = array.length;
var Xlength = array[0].length;
var maxLength = Math.max(Xlength, Ylength);
var temp;
for (var k = 0; k <= 2 * (maxLength - 1); ++k) {
    temp = [];
    for (var y = Ylength - 1; y >= 0; --y) {
        var x = k - y;
        if (x >= 0 && x < Xlength) {
            temp.push(array[y][x]);
        }
    }
    if(temp.length > 0) {
        document.body.innerHTML += temp.join('') + '<br>';
    }
}

(see also this Fiddle)


From the bottom left to top right

var array = ["ABCD","EFGH","IJKL"];

var Ylength = array.length;
var Xlength = array[0].length;
var maxLength = Math.max(Xlength, Ylength);
var temp;
for (var k = 0; k <= 2 * (maxLength - 1); ++k) {
    temp = [];
    for (var y = Ylength - 1; y >= 0; --y) {
        var x = k - (Ylength - y);
        if (x >= 0 && x < Xlength) {
            temp.push(array[y][x]);
        }
    }
    if(temp.length > 0) {
        document.body.innerHTML += temp.join('') + '<br>';
    }
}

(see also this Fiddle)


Combined

As there's but a single line of difference between both, you can easily combine them in a single function :

var array = ["ABCD","EFGH","IJKL"];

function diagonal(array, bottomToTop) {
    var Ylength = array.length;
    var Xlength = array[0].length;
    var maxLength = Math.max(Xlength, Ylength);
    var temp;
    var returnArray = [];
    for (var k = 0; k <= 2 * (maxLength - 1); ++k) {
        temp = [];
        for (var y = Ylength - 1; y >= 0; --y) {
            var x = k - (bottomToTop ? Ylength - y : y);
            if (x >= 0 && x < Xlength) {
                temp.push(array[y][x]);
            }
        }
        if(temp.length > 0) {
            returnArray.push(temp.join(''));
        }
    }
    return returnArray;
}

document.body.innerHTML = diagonal(array).join('<br>') +
                          '<br><br><br>' +
                          diagonal(array, true).join('<br>');

(see also this Fiddle)

share|improve this answer
    
If you run the snipped you will see that it missed entries from last column. – jcubic Mar 10 at 13:47
    
@jcubic : Fixed!! – John Slegers Mar 10 at 13:59
    
So close, i tried to implement your code and it seems alright, It works and I can understand what is happening. Thank you for that. But there is some problem when you have more rows in the array than the length of the strings. It does not return the last value. see this fiddle: jsfiddle.net/24xv3wvh/18 – viperia Mar 10 at 15:31
    
@viperia : I just fixed that. Could you try again, with the code of my latest update?! ;-) – John Slegers Mar 10 at 15:39
    
Thank you, thank you, thank you. That did it. The trick to see which side of the matrix is longer did it. – viperia Mar 10 at 15:45

This does the trick, and outputs the desired results to the screen:

var array = ['ABCD','EFGH','IJKL'];
var rows = array.length;
var cols = array[0].length;
for (var n = 0; n < cols + rows - 1; n += 1)
{
  var r = n;
  var c = 0;
  var str = '';
  while (r >= 0 && c < cols)
  {
    if (r < rows)
      str += array[r][c];
    r -= 1;
    c += 1;
  }
  document.write(str+"<br>");
}

Result:

A
EB
IFC
JGD
KH
L
share|improve this answer
    
You may want to reverse the string using str.split('').reverse().join(''); – jcubic Mar 10 at 13:57
    
This is basically the same as what I did. I think I like yours better, though. And you just made me realize that I was imagining the array wrong (flipped the indexes) – goodguy5 Mar 10 at 14:30

Yet another solution:

function getAllDiagonal(array) {
    function row(offset) {
        var i = array.length, a = '';
        while (i--) {
            a += array[i][j + (offset ? offset - i : i)] || '';
        }
        return a;
    }

    var result = [[], []], j;
    for (j = 1 - array.length; j < array[0].length; j++) {
        result[0].push(row(0));
        result[1].push(row(array.length - 1));
    }
    return result;
}

var array = ['ABCD', 'EFGH', 'IJKL'];

document.write('<pre>' + JSON.stringify(getAllDiagonal(array), 0, 4) + '</pre>');

share|improve this answer

Try this

var TheArray = ['ABCD', 'EFGH', 'IJKL'];
    //amount of rows
    var RowLength = TheArray.length;
    //amount of colums
    var ColumnLength = TheArray[0].length;

    var totalNoComb = RowLength + ColumnLength - 1;
    var combArr = new Array(totalNoComb);
    for (var i = 0; i < totalNoComb; i++) {
        combArr[i] = "";
        for (var j = RowLength-1; j >-1; j--) {
            if (i - j > -1 && i - j < ColumnLength)
                combArr[i] += TheArray[j][i-j];
        }
    }
    alert(combArr);

    for (var i = 0; i < totalNoComb; i++) {
        combArr[i] = "";
        for (var j = 0; j < RowLength; j++) {
            if (i - j > -1 && i - j < ColumnLength)
                combArr[i] += TheArray[ RowLength -1-j][i - j];
        }
    }
    alert(combArr);

share|improve this answer

Use indices:

[i][j-i]

Where i goes from 0 to M-1

j goes from 0 to i

While j++ < N

for the matrix

type Array[M][N]

However this may miss a few at the bottom right if the matrix is rectangular, and you might need a second nested for loop with i and j to capture those.

share|improve this answer

This should work even for rectangular matrices:

var array = ["ABCD", "EFGH", "IJKL"];
var arrOfArr = [];
var resultArray = [];
for (var i = 0; i < array.length; ++i) {
    arrOfArr.push(array[i].split(''));
}

var rows = arrOfArr.length;
var columns = arrOfArr[0].length;

var index = 0;

for (var i = 0; i < rows; ++i) {
    var k = 0;
    resultArray[index] = new Array();
    for (var j = i; j >= 0; --j) {
        resultArray[index].push(arrOfArr[j][k]);
        ++k;
        if ( k === columns) {
            break;
        }
    }
    resultArray[index] = resultArray[index].join('');
    ++index;
}

for (var j = 1; j < columns; ++j) {
    var k = rows - 1;
    resultArray[index] = new Array();
    for (var i = j; i < columns; ++i) {
        resultArray[index].push(arrOfArr[k][i]);
        --k;
        if ( k === -1) {
            break;
        }
    }
    resultArray[index] = resultArray[index].join('');
    ++index;
}
console.log(JSON.stringify(resultArray));

share|improve this answer

Note: This assumes that all strings are the same size, or at least are as large as the first string.

In a 2D array (or in this case, an array of strings), a diagonal's indexes add up to the diagonal's number (like a row-number). 00, 01 10, 02 11 20, etc.

Using this method, the number of diagonal "rows" (starting at zero) is equal to the sum of the largest indexes, or the sum of (columnlength+rowlength-2).

Therefore, my solution is to iterate through the diagonal row numbers and print all index pairs whose sum is equal to the current diagonal row.

var TheArray = ["ABCD","EFGH","IJKL"];
//amount of rows
var RowLength = TheArray.length;
//amount of colums
var ColumnLength = TheArray[0].length;

var text = ''
for (i = 0; i <= (RowLength+ColumnLength-2); i++){
    for (x = 0; x<=i; x++){
    if (TheArray[i-x] && TheArray[i-x][x]){
        text += TheArray[i-x][x];
    }
  }
  text += "<br/>";
}

document.getElementById('text').innerHTML = text;

JSFiddle Link

share|improve this answer

Here is my try for 'from top left to bottom right':

for (i=0; i<nbRows; i++) {
    x = 0; y = i;
    while (x < nbColumns && y >= 0) {
        print(array[x, y]);
        x++; y--;
    }
    print("\n");
}
for (i=1; i<nbColumns; i++) {
    x = i; y = nbRows - 1;
    while (x < nbColumns && y >=0) {
        print(array[x, y]);
        x++; y--;
    }
}

Needs a few adaptations to fit JavaScript syntax.

share|improve this answer

Full solution for both diagonals:

var TheArray = ['ABCD', 'EFGH', 'IJKL'];
var RowLength = TheArray.length;
var ColumnLength = TheArray[0].length;

// Diagonals
var diagonal = [[], []];
for (var i = 0; i < Math.min(RowLength, ColumnLength); i++) {
    diagonal[0].push({'row': 0-i, 'col': i});
    diagonal[1].push({'row': 0-i, 'col': 0-i});
}

// Entry points
// 1///
// 2///
// 3456
var points = [[], []];
for (var y = 0; y < RowLength; y++) {
    points[0].push({'row': y, 'col': 0});
}
for (var x = 1; x < ColumnLength; x++) {
    points[0].push({'row': RowLength - 1, 'col': x});
}

// Entry points
// \\\6
// \\\5
// 1234
for (var x = 0; x < ColumnLength; x++) {
    points[1].push({'row': RowLength - 1, 'col': x});
}
for (var y = RowLength - 2; y >= 0; y--) {
    points[1].push({'row': y, 'col': ColumnLength - 1});
}

var strings = [[], []];
for (var line = 0; line < diagonal.length; line++) {
    for (var point = 0; point < points[line].length; point++) {
        var inside = true;
        var index = 0;
        var string = '';
        while (inside && index < diagonal[line].length) {
            var row = points[line][point]['row'] + diagonal[line][index]['row'];
            var col = points[line][point]['col'] + diagonal[line][index]['col'];
            if (row >= 0 && row < RowLength && col >= 0 && col < ColumnLength) {
                string += TheArray[row][col];
                index++;
            } else {
                inside = false;
            }
        }
        strings[line].push(string);
    }
}

console.log(strings);
share|improve this answer

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