54

For example if I had "scissors" in variable and wanted to know the position of all occurrences of the letter "s", it should print out 1, 4, 5, 8

How can I do this in JavaScript in most efficient way? I don't think looping through the whole is terribly efficient

  • 4
    You really don't want 1-based character indices, do you? – Phrogz May 22 '12 at 21:27
  • 3
    Unless you have a large string, or a large number of strings, or this happens fairly often (like 100's of times a second), looping through the whole string will probably suffice. What matters is not how efficient it is, but whether it is fast enough. – mellamokb May 22 '12 at 21:27
  • 2
    Notice that the position of the characters start at 0 (not at 1), this is confusing at the beginning but you will do it automatically with practice – ajax333221 May 22 '12 at 22:36
  • "I don't think looping through the whole is terribly efficient" - How could it be possible to test every character in a string without looping through the whole string? Even if there was a built in .indexOfAll() method it would have to loop behind the scenes... – nnnnnn Aug 9 '16 at 21:58
82

A simple loop works well:

var str = "scissors";
var indices = [];
for(var i=0; i<str.length;i++) {
    if (str[i] === "s") indices.push(i);
}

Now, you indicate that you want 1,4,5,8. This will give you 0, 3, 4, 7 since indexes are zero-based. So you could add one:

if (str[i] === "s") indices.push(i+1);

and now it will give you your expected result.

A fiddle can be see here.

I don't think looping through the whole is terribly efficient

As far as performance goes, I don't think this is something that you need to be gravely worried about until you start hitting problems.

Here is a jsPerf test comparing various answers. In Safari 5.1, the IndexOf performs the best. In Chrome 19, the for loop is the fastest.

enter image description here

  • 2
    +1 By far the fastest solution. jsperf.com/javascript-string-character-finder – Tomalak May 22 '12 at 21:43
  • 3
    LOL, we three all made our own JSPerf tests ;) Note that looping is faster on Chrome, but slower on Firefox and IE (according to my test). – Phrogz May 22 '12 at 21:51
  • 1
    @Phrogz Ah, sorry. I meant "In Safari, indexOf is the fastest. Add it to your list of browsers where indexOf is the fastest" – vcsjones May 22 '12 at 21:57
  • 2
    @Phrogz and vcsjones: you guys used str[i] like if it where 100% crossbrowser compatibility... charAt() much more reliable – ajax333221 May 22 '12 at 22:15
  • 1
    This is how you should really test it, isolating the exact thing you are measuring: jsperf.com/10710345/3 – vsync Jan 16 '14 at 13:26
22

Using the native String.prototype.indexOf method to most efficiently find each offset.

function locations(substring,string){
  var a=[],i=-1;
  while((i=string.indexOf(substring,i+1)) >= 0) a.push(i);
  return a;
}

console.log(locations("s","scissors"));
//-> [0, 3, 4, 7]

This is a micro-optimization, however. For a simple and terse loop that will be fast enough:

// Produces the indices in reverse order; throw on a .reverse() if you want
for (var a=[],i=str.length;i--;) if (str[i]=="s") a.push(i);    

In fact, a native loop is faster on chrome that using indexOf!

Graph of performance results from the link

  • As @vcsjones mentioned, you can .push(i+1) if you (insanely) want 1-based values. – Phrogz May 22 '12 at 21:27
  • 1
    +1, but suggesting to use reverse after pushing stuff? use unshift() – ajax333221 May 22 '12 at 21:42
  • @ajax333221 Thanks for that; I haven't tested the speed of unshift(), but it might be slower for large arrays than a .push() and .reverse(). – Phrogz May 22 '12 at 21:53
  • @p true, push + reverse seems to perform better in these tests – ajax333221 May 22 '12 at 22:18
  • AWESOME. Thank you – R Claven Jun 29 '17 at 17:54
9

benchmark

When i benchmarked everything it seemed like regular expressions performed the best, so i came up with this

function indexesOf(string, regex) {
    var match,
        indexes = {};

    regex = new RegExp(regex);

    while (match = regex.exec(string)) {
        if (!indexes[match[0]]) indexes[match[0]] = [];
        indexes[match[0]].push(match.index);
    }

    return indexes;
}

you can do this

indexesOf('ssssss', /s/g);

which would return

{s: [0,1,2,3,4,5]}

i needed a very fast way to match multiple characters against large amounts of text so for example you could do this

indexesOf('dddddssssss', /s|d/g);

and you would get this

{d:[0,1,2,3,4], s:[5,6,7,8,9,10]}

this way you can get all the indexes of your matches in one go

  • According to the benchmark I ran on chrome, vcsjones is still the fastest jsperf.com/javascript-string-character-finder/6 – IonicBurger Nov 21 '15 at 11:01
  • Yes on a very small string, but look what happens when you increase the haystack: jsperf.com/javascript-string-character-finder/7 . Theres no competition, In my scenario i needed something that was performant in matching against large sets of text not a tiny string. – Chad Scira Nov 22 '15 at 0:01
  • Ah ok fair point :), perhaps you should add that graph to your answer to make it clear why your solution is in fact the most efficient. – IonicBurger Nov 22 '15 at 16:04
7
function charPos(str, char) {
  return str
         .split("")
         .map(function (c, i) { if (c == char) return i; })
         .filter(function (v) { return v >= 0; });
}

charPos("scissors", "s");  // [0, 3, 4, 7]

Note that JavaScript counts from 0. Add +1 to i, if you must.

  • 3
    +1 for functional fun, even if it's wicked inefficient in contrast to what the OP was asking for. – Phrogz May 22 '12 at 21:28
  • Cleanest approach, nice! – Josh Mc May 22 '12 at 21:31
  • @jezternz Probably not the fastest one, though. -- Actually, it's very slow. jsperf.com/javascript-string-character-finder – Tomalak May 22 '12 at 21:42
5

More functional fun, and also more general: This finds the starting indexes of a substring of any length in a string

const length = (x) => x.length
const sum = (a, b) => a+b

const indexesOf = (substr) => ({
  in: (str) => (
    str
    .split(substr)
    .slice(0, -1)
    .map(length)
    .map((_, i, lengths) => (
      lengths
      .slice(0, i+1)
      .reduce(sum, i*substr.length)
    ))
  )  
});

console.log(indexesOf('s').in('scissors')); // [0,3,4,7]

console.log(indexesOf('and').in('a and b and c')); // [2,8]

  • Plus one for syntax/readability – Alex Cory Aug 4 '17 at 19:04
2
indices = (c, s) => s
          .split('')
          .reduce((a, e, i) => e === c ? a.concat(i) : a, []);

indices('?', 'a?g??'); // [1, 3, 4]
1

You could probably use the match() function of javascript as well. You can create a regular expression and then pass it as a parameter to the match().

stringName.match(/s/g);

This should return you an array of all the occurrence of the the letter 's'.

  • 1
    this will not give indexes. – Vivek Feb 28 at 10:56
0

I loved the question and thought to write my answer by using the reduce() method defined on arrays.

function getIndices(text, delimiter='.') {
    let indices = [];
    let combined;

    text.split(delimiter)
        .slice(0, -1)
        .reduce((a, b) => { 
            if(a == '') {
                combined = a + b;
            } else { 
                combined = a + delimiter + b;
            } 

            indices.push(combined.length);
            return combined; // Uncommenting this will lead to syntactical errors
        }, '');

    return indices;
}


let indices = getIndices(`Ab+Cd+Pk+Djb+Nice+One`, '+');
let indices2 = getIndices(`Program.can.be.done.in.2.ways`); // Here default delimiter will be taken as `.`

console.log(indices);  // [ 2, 5, 8, 12, 17 ]
console.log(indices2); // [ 7, 11, 14, 19, 22, 24 ]

// To get output as expected (comma separated)
console.log(`${indices}`);  // 2,5,8,12,17
console.log(`${indices2}`); // 7,11,14,19,22,24

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