Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I have an array of objects and I'm wondering the best way to search it. Given the below example how can I search for name = "Joe" and age < 30? Is there anything jQuery can help with or do I have to brute force this search myself?

var names = new Array();
var object = { name : "Joe", age:20, email: "joe@hotmail.com"};

names.push(object);
object = { name : "Mike", age:50, email: "mike@hotmail.com"};
names.push(object);
object = { name : "Joe", age:45, email: "mike@hotmail.com"};
names.push(object);
share|improve this question
    
By search do you mean filter? – joragupra Dec 3 '13 at 10:20
up vote 63 down vote accepted

You may use jQuery.grep():

var found_names = $.grep(names, function(v) {
    return v.name === "Joe" && v.age < 30;
});

DEMO: http://jsfiddle.net/ejPV4/

share|improve this answer
1  
Very slick! I love it. – user441521 Nov 27 '12 at 23:20

You can do this very easily with the [].filter method:

var filterednames = names.filter(function(obj) {
    return (obj.name === "Joe") && (obj.age < 30);
});

You will need to add a shim for browsers that don't support the [].filter method: this MDN page gives such code.

share|improve this answer
    
I suggest taking a look at the polyfill in the linked MDN page, just to have some fun reading code and learn something new, possibly. – Nobita Dec 17 '15 at 22:55

So quick question. What if you have two arrays of objects and you would like to 'align' these object arrays so that you can make sure each array's objects are in the order as the other array's? What if you don't know what keys and values any of the objects inside of the arrays contains... Much less what order they're even in?

So you need a 'WildCard Expression' for your [].filter, [].map, etc. How do you get a wild card expression?

var jux = (function(){
    'use strict';

    function wildExp(obj){
        var keysCrude = Object.keys(obj),
            keysA = ('a["' + keysCrude.join('"], a["') + '"]').split(', '),
            keysB = ('b["' + keysCrude.join('"], b["') + '"]').split(', '),
            keys = [].concat(keysA, keysB)
                .sort(function(a, b){  return a.substring(1, a.length) > b.substring(1, b.length); });
        var exp = keys.join('').split(']b').join('] > b').split(']a').join('] || a');
        return exp;
    }

    return {
        sort: wildExp
    };

})();

var sortKeys = {
    k: 'v',
    key: 'val',
    n: 'p',
    name: 'param'
};
var objArray = [
    {
        k: 'z',
        key: 'g',
        n: 'a',
        name: 'b'
    },
    {
        k: 'y',
        key: 'h',
        n: 'b',
        name: 't'
    },
    {
        k: 'x',
        key: 'o',
        n: 'a',
        name: 'c'
    }
];
var exp = jux.sort(sortKeys);

console.log('@juxSort Expression:', exp);
console.log('@juxSort:', objArray.sort(function(a, b){
    return eval(exp);
}));

You can also use this function over an iteration for each object to create a better collective expression for all of the keys in each of your objects, and then filter your array that way.

This is a small snippet from the API Juxtapose which I have almost complete, which does this, object equality with exemptions, object unities, and array condensation. If these are things you need or want for your project please comment and I'll make the lib accessible sooner than later.

Hope this helps! Happy coding :)

share|improve this answer

You could utilize jQuery.filter() function to return elements from a subset of the matching elements.

var names = [
    { name : "Joe", age:20, email: "joe@hotmail.com"},
    { name : "Mike", age:50, email: "mike@hotmail.com"},
    { name : "Joe", age:45, email: "mike@hotmail.com"}
   ];
   
   
var filteredNames = $(names).filter(function( idx ) {
    return names[idx].name === "Joe" && names[idx].age < 30;
}); 

$(filteredNames).each(function(){
     $('#output').append(this.name);
});
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>

<div id="output"/>

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.