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I have this model:

var HuntGroupSchema = new Schema({
    name        : { type: String, required: true }
    ,domain     : { type: ObjectId, required: true, ref: 'Domain' }
    ,members    : [{ type: ObjectId, ref: 'User'}]
    ,email      : { type: String, unique: true}
    ,pin        : { type: Number, default: 0}
    ,extension  : { type: Number, required: true}
    ,timescheme : { type: ObjectId, ref: 'TimeScheme'}
    ,ddi        : { type: String}
});

and have this data

db.huntgroups.find()
{ "_id" : ObjectId("50373487947749f0370000b0"), "ddi" : "01376xxxxxx", "domain" :      ObjectId("502807e9b9e737036d000018"), "email" : "julian@dotr.com", "extension" : 3001,     "members" : [ ObjectId("50376767b5c99cd862000003") ], "name" : "test22", "pin" : 1234 }

and this test always returns -1

// req.params['member'] === '50376767b5c99cd862000003'
var member_id = mongoose.Types.ObjectId(req.params['member']);

console.log($.inArray(member_id, huntgroup.members));

can anyone tell me why ?

Warning: I am a newbie at mongoose, jquery and javascript, so go gentle ;)

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1 Answer 1

up vote 1 down vote accepted

It's because $.inArray is only checking for reference equality on the ObjectId objects.

To compare the values of the ObectIds instead you'd need to use the equals operator of ObjectId by doing something like the following:

huntgroup.members.forEach(function(member) {
    if (member.equals(member_id)) {
        // Yes, member_id is contained in the array
    }
});
share|improve this answer
    
oh. I was confused by jQuery's definition: jQuery.inArray() : Search for a specified value within an array and return its index (or -1 if not found). I thought that the "value within an array" meant exactly that :) I'll try your method instead. thanks ! –  jmls Aug 25 '12 at 20:01
    
@user1542325 For primitive types like number, boolean and string, inArray compares their values, but not for reference types like ObjectId. docstore.mik.ua/orelly/webprog/jscript/ch04_04.htm –  JohnnyHK Aug 25 '12 at 21:57

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