52

I have an array, I need to return a restaurant's name, but I only know the value of its "food" attribute (not it's index number).

For example, how could I return "KFC" if I only knew "chicken"?

restaurants = 
  [
    {"restaurant" : { "name" : "McDonald's", "food" : "burger" }},
    {"restaurant" : { "name" : "KFC",        "food" : "chicken" }},
    {"restaurant" : { "name" : "Pizza Hut",  "food" : "pizza" }}
  ];
65
for(var i = 0; i < restaurants.length; i++)
{
  if(restaurants[i].restaurant.food == 'chicken')
  {
    return restaurants[i].restaurant.name;
  }
}
  • 9
    For some speed improvement change first line to: for(var i = 0, numRestaurants = restaurants.length; i < numRestaurants, i++) – Antony Sastre Jul 21 '14 at 8:51
  • 2
    @AntonySastre: Semi colon missing: for(var i = 0, numRestaurants = restaurants.length; i < numRestaurants; i++) – iMatoria Sep 18 '15 at 3:50
  • 3
    @AntonySastre why is that a speed improvement? – Uzebeckatrente May 22 '17 at 9:51
  • because restaurants.length will be accessed over and over until the loop ends, unlike when stored in a variable, it will only get the value that is already set. – apelidoko Feb 8 '18 at 3:10
  • I don't think so... Isn't length a property of Array (an object)? Array.length should have constant time complexity. Wouldn't most js engines understand what you're trying to do and optimize around it? – Parth Mehrotra Jun 4 '18 at 15:32
44

In this case i would use the ECMAscript 5 Array.filter. The following solution requires array.filter() that doesn't exist in all versions of IE.

Shims can be found here: MDN Array.filter or ES5-shim

var result = restaurants.filter(function (chain) {
    return chain.restaurant.food === "chicken";
})[0].restaurant.name;
  • 8
    Why the down vote? – He Nrik Apr 5 '13 at 9:09
  • 13
    This is superior to the accept answer because it points out that there can potentially be more than one match. In this case, the code returns the first match via [0], but filter actually returns them all. However, it will not work with IE 6, 7, and 8. But hey, screw IE 6, 7, and 8. – HDave Jan 17 '14 at 22:36
33

you can also use the Array.find feature of es6. the doc is here

return restaurants.find(item => {
   return item.restaurant.food == 'chicken'
})
  • 2
    At the moment, this feels like the most elegant solution. – dr4g1116 Apr 26 '17 at 21:53
6
for (x in restaurants) {
    if (restaurants[x].restaurant.food == 'chicken') {
        return restaurants[x].restaurant.name;
    }
}
  • Why does this have -1 beside it – FloatLeft Apr 26 '11 at 10:37
  • 3
    Not sure, the code works perfectly. It may be waiting for your +1. – Ben Apr 27 '11 at 6:45
  • 2
    Because it's slow when compared to a standard for() loop. See Javascript Garden for more info. – peehskcalba Aug 2 '11 at 14:53
  • 1
    for in should not be used for arrays – pjnovas Feb 20 '13 at 15:23
  • I agree with pjnovas. For-in is dangerous. If array gets a prototype, this code will fail. Example: Run "Array.prototype.f = function(){};" before the for-in. – He Nrik Jun 27 '13 at 15:39
1

Must be too late now, but the right version would be:

for(var i = 0; i < restaurants.restaurant.length; i++)
{
  if(restaurants.restaurant[i].food == 'chicken')
  {
    return restaurants.restaurant[i].name;
  }
}
1

you can use ES5 some. Its pretty first by using callback

function findRestaurent(foodType) {
    var restaurant;
    restaurants.some(function (r) {
        if (r.food === id) {
            restaurant = r;
            return true;
        }
   });
  return restaurant;
}
1

@Chap - you can use this javascript lib, DefiantJS (http://defiantjs.com), with which you can filter matches using XPath on JSON structures. To put it in JS code:

var data = [
   { "restaurant": { "name": "McDonald's", "food": "burger" } },
   { "restaurant": { "name": "KFC",        "food": "chicken" } },
   { "restaurant": { "name": "Pizza Hut",  "food": "pizza" } }
].
res = JSON.search( data, '//*[food="pizza"]' );

console.log( res[0].name );
// Pizza Hut

DefiantJS extends the global object with the method "search" and returns an array with matches (empty array if no matches were found). You can try out the lib and XPath queries using the XPath Evaluator here:

http://www.defiantjs.com/#xpath_evaluator

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