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here is the code

var txt = '{"tblCommoHier":[ {"DEPT":[' + '{"DEPT":"100","DEPT_NAME":"Collectibles" },' + '{"DEPT":"105","DEPT_NAME":"Commodities" },' + '{"DEPT":"140","DEPT_NAME":"Souvenir" }]}]}';              
var obj = eval ("(" + txt + ")");

I'm trying the code

obj.tblCommoHier.DEPT[1].DEPT

to reach out to the first element of the DEPT element under tblCommoHier but I keep getting error says not defined.

Can somebody please help me with this issue?

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up vote 4 down vote accepted

In general, avoid using eval. The JSON object has a parse method for converting from strings to JSON. Also, when dereferencing an object nested in an array, you must remember your array indexing. The first two layers of your JSON object have array values. The correct formulation is:

var txt = '{"tblCommoHier":[ {"DEPT":[' + '{"DEPT":"100","DEPT_NAME":"Collectibles" },' + '{"DEPT":"105","DEPT_NAME":"Commodities" },' + '{"DEPT":"140","DEPT_NAME":"Souvenir" }]}]}';

var obj = JSON.parse(txt);

var elem = obj.tblCommoHier[0].DEPT[0].DEPT;

This yields "100".

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1  
Yes, OP should use JSON.parse() instead of eval() – Mike Brant Dec 26 '12 at 17:32
    
Hi, how to structure the JSON to access the items using obj.tblCommoHier.DEPT[1].DEPT. The reason I ask this is because I don't want to loop through the items in the JSON array to reach specifically to the tblCommoHier.DEPT items. – buri kuri Dec 26 '12 at 17:39
1  
@MikeBrant $.parseJSON uses JSON.parse internally, but it is not universally available; if he is already using jQuery the former would be preferred. – Explosion Pills Dec 26 '12 at 18:22
1  
@ExplosionPills My comment was really about using JSON parsing in general rather than eval() you could absolutely use $.parsJSON() here as well. – Mike Brant Dec 26 '12 at 18:28
1  
Use JSON.parse! You simply remove eval and replace it with JSON.parse. Like the name suggests, it's designed for parsing JSON. The usage is shown in my answer above. As is, that example doesn't look like valid JSON to me, but I've shown you examples converting from JSON strings to objects above. If you're building the string in parts it's exactly the same, once the resulting string is a valid JSON string. Make sure you have all your quotation marks and you're lining up your braces appropriately. JSON.parse will take care of the rest. Check the docs for details. – nbrooks Dec 27 '12 at 15:24

tblCommoHier is an array itself, so you should use:

obj.tblCommoHier[0].DEPT[1].DEPT

Take a look at this jsFiddle if you want to test anything

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You want

obj.tblCommoHier[0].DEPT[0].DEPT

That will yield "100"

If you are using jQuery you should use $.parseJSON instead of eval.

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1  
That yields undefined. Be careful with your array indexing. – nbrooks Dec 26 '12 at 17:29
1  
@nbrooks thanks; edited – Explosion Pills Dec 26 '12 at 18:22

try this: http://jsfiddle.net/jbTLB/

var txt = '{"tblCommoHier":[ {"DEPT":[' + '{"DEPT":"100","DEPT_NAME":"Collectibles" },' + '{"DEPT":"105","DEPT_NAME":"Commodities" },' + '{"DEPT":"140","DEPT_NAME":"Souvenir" }]}]}';
var obj = $.parseJSON(txt);
console.log(obj.tblCommoHier[0].DEPT[0].DEPT);
    //-----------------------------------^------this will get the 100
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