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How do I shift an array of items up by 4 places in Javascript?

I have the following string array:

var array1 = ["t0","t1","t2","t3","t4","t5"];

I need a function convert "array1" to result in:

// Note how "t0" moves to the fourth position for example
var array2 = ["t3","t4","t5","t0","t1","t2"];

Thanks in advance.

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3  
this is rotating, not shifting –  Peter Oct 5 '09 at 19:59
    
different words, same result –  Darryl Hebbes May 3 '12 at 13:22
    
+1 Peter b/c I think this is a case where precision (using the correct word) is important. Array.shift() already defines the meaning of shifting an array in the context of JavaScript. That said, here is a JS function for rotating an array. stackoverflow.com/a/1985471/740639 –  Walter Stabosz Jun 25 '13 at 20:57

5 Answers 5

up vote 17 down vote accepted
array1 = array1.concat(array1.splice(0,3));

run the following in Firebug to verify

var array1 = ["t0","t1","t2","t3","t4","t5"];
console.log(array1);
array1 = array1.concat(array1.splice(0,3));
console.log(array1);

results in

["t0", "t1", "t2", "t3", "t4", "t5"]
["t3", "t4", "t5", "t0", "t1", "t2"]
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Oh, very nice. :) –  Nathan Long Oct 5 '09 at 16:46
2  
as a function- function reorderArray(arr, startIndex, howMany) { return arr.concat(arr.splice(startIndex,howMany)); } would need error checking as well :) –  Russ Cam Oct 5 '09 at 16:51
1  
Be aware, Array.concat() create a whole new array using the elements from the source arrays. Moot for small arrays, but something to consider. –  Walter Stabosz Jun 25 '13 at 21:02
    
@WalterStabosz good point –  Russ Cam Jun 25 '13 at 21:09

You can slice the array and then join it in reversed order:

var array2 = array1.slice(3).concat(array1.slice(0, 3));
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1  
This is nice and concise. If you're going to do this frequently, and need to shift it by different amounts, you could put this into a function and pass in a variable to plug in where the 3 is. (I use the word "shift" hesitantly, since that's a Javascript array method, too.) –  Nathan Long Oct 5 '09 at 16:44

One more way would be this:

var array2 = array1.slice(0);

for (var i = 0; i < 3; i++) {
    array2.push(array2.shift());
}
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function shiftArray(theArray, times) {
    // roll over when longer than length
    times = times % theArray.length;
    var newArray = theArray.slice(times);
    newArray = newArray.concat(theArray.slice(0, times));
    return newArray;
}

var array1 = ["t0","t1","t2","t3","t4","t5"];
var array2 = shiftArray(array1, 3);
alert(array2); // ["t3","t4","t5","t0","t1","t2"]
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Another way - paste the following code into the large Firebug console to confirm it works:

var a = [0, 1, 2, 3, 4, 5];
for (var i = 0; i < 3; i++) {
    a.unshift(a.pop());
}
// the next line is to show it in the Firebug console; variable "a" holds the array
a.toString(",");
share|improve this answer
    
The end result should be an array, not a string, right? –  Nathan Long Oct 5 '09 at 16:51
    
@Nathan: the end result is an array, held in the variable "a"; the line outputting it as a string is for illustrative purposes, which is why it's not assigned to anything (it goes straight to the console in Firebug). I'll correct my answer to make it clear that I meant the Firebug console... sometimes I forget it's not built-in to the browser ;-) –  NickFitz Oct 5 '09 at 16:53

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