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I'm getting the error: object 0 has no method 'push', and I can't figure out why.

I know that sack[i] is the object, i is 0 and quantity_to_spawn equals 1.

I think that node has an issue with pushing because sack is an array and sack[i] is actually an object.

for (i=0;i<rows[r].quantity_to_spawn;i++){
      more_drops = Math.random()
      sack[i]=new Array();
      for (;more_drops > .05;){
          more_drops = Math.random()
          rarity = Math.random()
          if (rarity <= .75&&typeof rows[r].common=="string"){//common drop 75%
             item=rows[r].common.split(",")
             sack[i].push(parseInt(item[parseInt(Math.random()*item.length)]))
                  ...
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Are you declaring sack before the outer for loop as an array? –  ZachB Aug 15 '12 at 4:31
    
I'd be more comfortable if I saw a few var keywords in there... –  Anthony Mills Aug 15 '12 at 4:32
1  
Use semicolons, they should not be optional. Why does it seem everything is also global? –  epascarello Aug 15 '12 at 4:34
1  
Also your random times length is going to give issues when Random returns one. –  epascarello Aug 15 '12 at 4:41
    
Add var sack = []; before the first for. –  Vlad Aug 15 '12 at 4:50

2 Answers 2

up vote 1 down vote accepted

I'm sure you are missing to declare the variable sack as an array,

var sack = new Array();

or

var sack = [];

Otherwise it should work

Here is the simple demo

I made some experiment regard to this problem, found some interesting facts. Those are,

The problem is sack is already assigned something like var sack = 'someValue';. in this case (assigned value string type), this resulting in sack to be a string array. Hence the assignment sack[i]=new Array(); make no sense. sack[0] will be s. and try to push some value to this will throw the error object 0 has no method 'push'

Another case(assigned value number type), assignment is like var sack = 28892;. In this case, the same array assignment making no sense. But if you try to push something to sack[0] it will throw Cannot call method 'push' of undefined, since sack[0] is undefined.

In both cases, after declaring sack to some value, the assignment not produced any error, though it is useless.

Additional information about array declaration,

Javascript array declaration: new Array(), new Array(3), ['a', 'b', 'c'] create arrays that behave quite differently

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This can't be the issue. If it was, there would be sack is undefined thrown just before the second for loop. –  Teemu Aug 15 '12 at 6:07
    
@Teemu no, what will happen if the variable defined as var sack;, obviously there would be no such error. –  code-jaff Aug 15 '12 at 7:11
    
In that case the error would be Can't set property 0, object is null or undefined in line sack[i]=new Array();. There's no way to execute code past this line, if sack is not an array. OP's having this error: object 0 has no method push, this tells that object (=== sack[0]) exists, but there's not method called push in that object. –  Teemu Aug 15 '12 at 7:29
    
@Teemu ya, agree. –  code-jaff Aug 15 '12 at 7:52

No idea what you are doing here, but try this:

var sack = [];
for (var i=0;i<rows[r].quantity_to_spawn;i++) {
  var more_drops = Math.random();
  sack[i] = [];
  for (;more_drops > 0.05;) {
      more_drops = Math.random();
      var rarity = Math.random();
      if (rarity <= 0.75&&typeof rows[r].common==="string") {//common drop 75%
         var item = rows[r].common.split(",");
         sack[i].push(parseInt(item[parseInt(Math.random()*item.length,10)],10));
         ... 
share|improve this answer
    
This can't be the issue. If it was, there would be sack is undefined thrown just before the second for loop. –  Teemu Aug 15 '12 at 6:04

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