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So I'm trying to think of a better way to do this with underscore:

state.attributes = _.reduce(list, function(memo, item){ 
    memo['neighborhood'] = (memo['neighborhood'] || []);
    var isNew = true;
    _.each(memo['neighborhood'], function(hood){
        if (hood.name === item.data.neighborhood) {
            hood.count++; isNew=false;
        } 
    });
    if(isNew){
        memo['neighborhood'].push({name:item.data.neighborhood, count:1});
    }
    return memo;
});

I would like to combine the various names of the list into a list of unique names with a count of how many times each unique name occurs. It seems like exactly the kind of problem underscore was designed to solve, yet the best solution I could think of seems less than elegant.

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2 Answers 2

up vote 4 down vote accepted

I'm not an underscore.js user, but I guess _.groupBy() suits this scenario:

var attributes = _.groupBy(list, function (item) {
    return item.data.neighborhood
})

It doesn't returns an array in the exact way you want, but it contains all the information you need. So you have in attributes["foo"] all the items that have "foo" as neighborhood value property, and therefore in attributes["foo"].length the count of them.

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thanks for the answer; i should take another try with groupBy, but I think the above would provide a count of how many neighborhoods there are. I am looking for a count of how many of each value there is for neighborhood there is. e.g. north:2, west:5 rather than neighborhoods: 2. –  BishopZ May 6 '12 at 16:47
    
groupBy does exactly what you want. You will have: attributes["north"] that contains an array with all the items that have neighborhood equals to "north", so with: attributes["north"].length and attributes["west"].length you will have 2 and 5. –  ZER0 May 7 '12 at 10:31

Maybe there is a better underscore.js way, but you can already apply other optimizations:

Instead of using an array to keep track of the name and the count, use a name: count map. This can be easily done with an object:

state.attributes = _.reduce(list, function(memo, item){ 
    var n = item.data.neighborhood;
    memo['neighborhood'] = (memo['neighborhood'] || {});
    memo['neighborhood'][n] = memo['neighborhood'][n] + 1 || 1;
    return memo;
});

This works, because if item.data.neighborhood is not in the list yet, memo['neighborhood'][item.data.neighborhood] will return undefined and undefined + 1 returns NaN.
Since NaN evaluates to false, the expression NaN || 1 will result in 1.

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nice. so much better. thank you! –  BishopZ May 6 '12 at 8:33

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