Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

I'm wondering how I should define instance variables inside a Backbone Model. This is the way I'm currently doing it:

class GeneSet extends Backbone.Model
    initialize: (parsedGenes)->
        @set parsedGenes: parsedGenes
        @set geneNames: (gene.gene_name for gene in @get("parsedGenes"))
        @set geneIds: ("gene_#{id}" for id in [1..@get("parsedGenes").length])
        @set columnNames: @getColumnNames()
        @set columnGroups: @getColumnGroups()
        @set geneExpressions: @getGeneExpressions()
        @set groupedGeneExpressions: @getGroupedGeneExpressions()
        @set extent: @getExtent()

    clusterColor: ->

    getGeneNameById: (geneId)->

    getColumnGroups: ->

    getExtent: ->
        expressions = _.flatten(@get("geneExpressions").map (geneExpression)->

    getColumnNames: ->
        Object.keys(@get("parsedGenes")[0]).filter (columnName) ->
            !columnName.match(/cluster/) && isNumber(parsedGenes[1][columnName])

    getGeneExpressions: ->
        @get("parsedGenes").map (gene) =>
            @get("columnNames").map (columnName) -> 
                x: columnName
                y: +gene[columnName] # make numeric

This seems a little redundant to do @set columnGroups: @getColumnGroups() and having to get every variable using @get("...") seems kind of verbose (I wish I could do @variableName). My question is, is this the right way of using models and instance variables or am I doing it wrong? Also, is there any difference to doing this?:

    class GeneSet extends Backbone.Model
        initialize: (parsedGenes)->
            @parsedGenes = parsedGenes
            @geneNames = (gene.gene_name for gene in @parsedGenes)
            @geneIds = ("gene_#{id}" for id in [1..@parsedGenes.length])
            @clusters = (gene.cluster for gene in @parsedGenes)
            @descriptions = (gene.description for gene in @parsedGenes)
            @columnNames = @getColumnNames()
            @columnGroups = @getColumnGroups()
            @geneExpressions = @getGeneExpressions()
            @groupedGeneExpressions = @getGroupedGeneExpressions()
            @extent = @getExtent()

And then, from the view just doing @model.columnNames

share|improve this question
how do you observe attribute changes if you do the second way ? if descriptions changes you cant observe description. the only alternative is to use ES5 Object.defineProperty but verbose and not compatible with older browsers . furthermore it doesnt fit the backbone "way" that well. – mpm May 24 '12 at 22:21
I see, somebody did it here:… – nachocab May 24 '12 at 22:29
i did not say you cant , i said if you have like 20 props ... well i guess you could create a helper function . – mpm May 24 '12 at 22:32

1 Answer 1

up vote 3 down vote accepted

Here's what I do in my base model superclass. It's pretty much against the backbone design, but I too hate using get and set and I want real methods behind all attribute access. So I do some metaprogramming and generate named get/set methods. So instead of having to do:

model.set("name", "Tom")

I can just do"Tom")

Here's my base code to do this automatically for any arbitrary attributes object.

addConvenienceMethods = ->
  for prop, value of this.attributes
    ((prop) ->
      #Define a setter/getter function
      this[prop] = (newValue...) ->
        if newValue.length
          obj = {}
          obj[prop] = newValue[0]
          this.set obj
          return this
          return this.get prop
      #Use the newly-defined setter function to store the default value
    ).call(this, prop)

########## Base Model Superclass ##########
class exports.Model extends Backbone.Model
  initialize: -> this

Note this was written on a backbone version old enough to not support set("key", "value"). If I were to update it, I'd probably use that variant. Note since the set flavor returns the object, they are chainable:"John").email("").role("admin")

share|improve this answer

Your Answer


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.