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How to create object property from variable value in javascript?

OK - this is a tough on for me. I am looping through all of my classes="data" using jQuery. I then want to assign properties to my feature using each specific "dataName" and "dataValue". However, once complete, I only have a a propery of "dataName=(the last value looped)". How can I assign my dataName variable to create a new property each time - instead of thinking I only want to create a property named "dataValue"

function pushAttributesintoFeature(feature) {  
  $(".data").each( function(){
    var dataName = $(this).attr("name")
    var dataValue = $(this).val()   
    feature.dataName = dataValue
  })
}

Example:

<input class="data" name="radius" value="15">
<input class="data" name="height" value="5">

Once I execute the script, I am left with: feature.dataName = "5" But I want: feature.radius="15" AND feature.height = "5"

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marked as duplicate by katspaugh, James Allardice, Ja͢ck, Mario, Blazemonger Dec 20 '12 at 16:37

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3 Answers 3

up vote 2 down vote accepted

You can use the square bracket syntax to access a property with a variable:

feature[dataName] = dataValue;

This will set a property whose identifier is the value of dataName, rather than the literal string "dataName".

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Wow - thanks for the quick response. Works perfect! –  Kyle Dec 20 '12 at 13:56
    
@Kyle - You're welcome, glad I could help :) –  James Allardice Dec 20 '12 at 13:57

You can write your code like this:

feature[$(this).attr("name")] = $(this).val()
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Use this sintax for setting the values:

function pushAttributesintoFeature(feature) {  
  $(".data").each( function(){
    var dataName = $(this).attr("name")
    var dataValue = $(this).val()   
    feature[dataName] = dataValue;
  })
}
share|improve this answer
    
"Syntax like this... is equivalent to this"... no it's not, that's the whole point! Did you miss the quotes around dataName in the first example? That would make them equivalent. –  James Allardice Dec 20 '12 at 13:59
    
@James Allardice You've misunderstand my answer. But I've edited it to avoid future misuderstandings. –  VMAtm Dec 20 '12 at 18:04

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