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i have this code to get three values.

 success: function(json){
                        $msg1 = parseFloat(json[0].valor1);
                        $msg2 = parseFloat(json[1].valor2);
                        $msg3 = parseFloat(json[2].valor3);
                    }

but now suppose that i need 200 values. I'm not doing 200 times ...

                        $msg1 = parseFloat(json[0].valor1);
                        $msg2 = parseFloat(json[1].valor2);
                        $msg3 = parseFloat(json[2].valor3);
                        //...
                        $msg200 = parseFloat(json[199].valor200);

so, i need a loop, correct?

i tried something like this

                        for (i=0; i<200; i++) {
                        $msg(i+1) = parseFloat(json[i].valor(i+1));
                        i++;
                        }   

but didn't work

thanks

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Why do you need 200 variables? Why not have one array with 200 elements? –  lonesomeday Apr 19 '11 at 14:10
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4 Answers

up vote 1 down vote accepted
$msg = [];
for (var i=0; i<200; i++) {
    $msg.push(parseFloat(json[i]["valor"+i]));       
} 
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Umm no that is a syntax error. –  Pointy Apr 19 '11 at 14:12
    
I've corrected it. –  Headshota Apr 19 '11 at 14:12
    
syntax error too in lint –  loops Apr 19 '11 at 14:36
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This is why The Creator gave the world arrays.

var msgs = [];
for (var i = 0; i < 200; ++i)
  msgs.push(parseFloat(json[i]['valor' + i]));

Note that your JSON data should also keep those "valor" properties as arrays, though in JavaScript you can deal with a bizarre naming scheme like that as in the example above.

edit — oops, typos fixed :-)

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you code give me an error syntax - javascriptlint.com/online_lint.php. i think you forget a ] –  loops Apr 19 '11 at 14:22
    
@Wire Creation oh sorry a typo - I'll fix it ... –  Pointy Apr 19 '11 at 14:44
    
no problem :) one more question please Pointy. Anteriorly i access to the values with y: $msg1. With your code, how i do? i try $msg[i]= msgs.push(// but i get $msg is not defined error –  loops Apr 19 '11 at 14:54
    
Well if you set this up as an array, then it would be "msgs[1]" instead of "msgs1". –  Pointy Apr 19 '11 at 16:04
    
i just copy paste your code and change the y:$msg1 to y: msgs[0], and i get msgs is not defined y: msgs[0], –  loops Apr 19 '11 at 16:12
show 3 more comments

As stated by Pointy or:

                var msgs = [];
                for (i=0; i<200; i++) {
                $msg[i] = parseFloat(eval('json[' + i + '].valor(' + i + '+1)'));
                i++;
                } 

However eval is slow, so Pointy's answer is better.

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But what exactly is "$msg(i+1)" supposed to do? –  Pointy Apr 19 '11 at 14:10
    
right didnt catch that one, updating. and giving you a +1 :) –  Marino Šimić Apr 19 '11 at 14:11
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var array = json.someid;// or json['someid'];
// json is returned not an array
var msgs = [];
$.each(array, function(index, e) {
    msgs.push(parseFloat[e['valor' + index], 10); 
});

when using parseFloat use the radix parameter unless you want bad things to happen;

javascript needs to be told for example not to parse octal;

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