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Let's say I have the array ['dcab', 'feac', 'gwad', 'dnae'] but want to make it so that each 'a' is in its own token, eg ['dc', 'a', 'b', 'fe', 'a', 'c', 'gw', 'a', 'd', 'dn', 'a', 'e'];. How would I do that? Thanks!

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Huh? How are you getting that result? How do you know where to split it? Why do some elements have 2 letters and others have one? –  Rocket Hazmat Aug 10 '12 at 22:34
1  
What do you have so far? Where are you stuck? –  squint Aug 10 '12 at 22:35
    
@Rocket, they have two letters because I want the a to be separated, in it's own "token" so that means the text before and after the a also go in it's own token –  Kpower Aug 10 '12 at 22:40

4 Answers 4

up vote 4 down vote accepted
var arr = ['dcab', 'feac', 'gwad', 'dnae'];
var result = [];
var i;
var s;

for (i = 0; i < arr.length; i++) {
    s = arr[i].split('a');
    result.push(s[0]);
    if (s.length > 1) {
        result.push('a');
        result.push(s[1]);
    }
}

Only works if each string contains exactly one or zero 'a' characters. You could iterate through the result of split if it could contain more.

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thanks so much for this. If you don't mind, can you please quickly explain your code though? I thought running a split would delete all of the "a"'s from the array –  Kpower Aug 10 '12 at 22:42
    
what if there are multiple as in a string? you probably need an inner loop. –  Robert Aug 10 '12 at 22:44
    
sure. split returns an array of string parts separated by 'a'. It will return an array with only one element if there is no 'a'. no matter what, we keep that first element. Then, if an 'a' was found (s has more than one element), we add that to the result, then we add the next part of the string. This occurs once for each element of the given array. –  bkconrad Aug 10 '12 at 22:45
    
@Robert, I mentioned that just below the code. I didn't want to make it unnecessarily complex since that condition wasn't present in the given example. I figured that handling the non-present delimiter was already more than he asked for. –  bkconrad Aug 10 '12 at 22:46
    
@bkconrad that makes sense. Thanks a bunch! –  Kpower Aug 10 '12 at 22:49
var x = ['dcab', 'feac', 'gwad', 'dnae'];
x = x.join('-').replace(/a/g,"-a-").split('-');

Update: As @Robert pointed out, if you have 'a' at the beginning or end, this will cause '' blank strings to appear in the final array. You can fix this by doing the following to remove the blank strings:

x.join('-').replace(/a/g,"-a-").split('-').filter(function(x) { return x!='' });

Or, for larger arrays where performance might be an issue, you can simply get rid of the extra delimiters using another .replace() (this is probably the better approach, though it isn't as readable):

x.join('-').replace(/a/g,"-a-").replace(/^\-|\-(?=\-)|\-$/g,'').split('-');

Of course, it goes without saying that your delimiter can be anything (it doesn't have to be a '-') once you can guarantee that this won't be in any of your strings.

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The join should be '-' not '' I think. –  HBP Aug 10 '12 at 22:42
    
@HBP yep, thanks for pointing that out :) –  nbrooks Aug 10 '12 at 22:42
1  
...That's an awesome little one-liner :-) –  Rocket Hazmat Aug 10 '12 at 22:42
    
I like this solution, nice and small. –  elclanrs Aug 10 '12 at 22:43
    
This solution doesn't work if one of the strings starts or ends with "a" or contains multiple successive "a"s. –  Robert Aug 11 '12 at 0:11
var arr = ['dcab', 'feac', 'gwad', 'dnae'];

var new_arr = arr.reduce(function(ret, val) {
    ret.push.apply(ret, val.split(/(a)/))
    return ret;
}, []);

Note that capturing and retaining the split character isn't supported in some older browsers.


A little more concise like this...

var new_arr = arr.reduce(function(ret, val) {
    return ret.concat(val.split(/(a)/));
}, []);
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Thanks @Rocket. I thought I had seen that value in the result. –  squint Aug 10 '12 at 22:41
1  
I think he wants to use 'a' as a delimiter, but +1 because reduce isn't used enough. –  bkconrad Aug 10 '12 at 22:41
    
@bkconrad: Ah, I think you're right. I missed that in the question. Updating... –  squint Aug 10 '12 at 22:43
    
Thanks! Um, just curious though how does the whole ret and val thing work? –  Kpower Aug 10 '12 at 22:46
    
...in other words, the first argument to the callback is an "accumulator", and the second argument is the value of the current item in the iteration. The "accumulator" is the return value of the last iteration. If you were summing the values in an Array of numbers, you could seed it with 0, then do return ret + val. Each new iteration, ret will be the previous return value (the current sum), so it accumulates the sum of all the items in the array. Here's a demo –  squint Aug 10 '12 at 22:56

First you treat the array elements separately and extract their tokens. Then you combine the results.

There are 3 types of token you are looking for:

  • a single "a". The regular expression for that is /a/.
  • a sequence of other characters => /[^a]+/
  • when the original element is an empty string you want to keep that => /^$/

So in total the regular expression for a token is /a|[^a]+|^$/. For extracting all tokens you need to include the global search flag g.

var strings = ['dcab', 'feac', 'gwad', 'dnae'];

var arrays = strings.map(function(string) {
    return string.match(/[^a]+|a|^$/g);
});

match returns an array with the tokens it found in the string. All that is left to do is to concatenate all of those arrays.

Luckily there is an array method just for this specific purpose. But unfortunately it isn't exactly easy to use with an unknown number of arrays:

var tokens = arrays[0].concat(arrays[1], arrays[2], ...

First of all you don't know how many arrays you have. So there's no way the pass the correct number of arguments. But maybe you don't even know if array[0] exists. So you would better use an empty array as the starting point.

There are ways to solve this problem though.

One solution is to divide the concatenations into multiple steps:

var tokens = arrays.reduce(function(result, array) {
    return result.concat(array);
}, []); // note the initial empty array

But to me it seems more appropriate to make use of apply and pass all arrays at once:

var concat = Array.prototype.concat;
var tokens = concat.apply([], arrays);

All put together the code would look like this:

var strings = ['dcab', 'feac', 'gwad', 'dnae'];
var concat = Array.prototype.concat;

var tokens = concat.apply([], strings.map(function(string) {
    return string.match(/[^a]+|a|^$/g);
}));
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