Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I am more of a PHP person, not JS - and I think my problem is more a syntax problem ..

I have a small jQuery to "validate" and check input value .

It works ok for single words, but I need array.

I am using the inArray() of jQuery .

var ar = ["value1", "value2", "value3", "value4"]; // ETC...

        jQuery(document).ready(function() {

            jQuery("form#searchreport").submit(function() {
            if (jQuery.inArray(jQuery("input:first"), ar)){ 
                      //if (jQuery("input:first").val() == "value11") { // works for single words
            jQuery("#divResult").html("<span>VALUE FOUND</span>").show();
            jQuery("#contentresults").delay(800).show("slow");
                return false;
              }

        // SINGLE VALUE SPECIAL CASE / Value not allowed 
               if (jQuery("input:first").val() == "word10") {

                jQuery("#divResult").html("YOU CHEAT !").show();
                jQuery("#contentresults").delay(800).show("slow");

                return false;
              }

        // Value not Valid

              jQuery("#divResult").text("Not valid!").show().fadeOut(1000);

              return false;
            });

        });

now - this if (jQuery.inArray(jQuery("input:first"), ar)) is not working right .. every value that I put will be validated as OK . (even empty)

I need to validate only values from the array (ar) .

I tried also if (jQuery.inArray(jQuery("input:first"), ar) == 1) // 1,0,-1 tried all

what am i doing wrong ?

Bonus question : how to do NOT in array in jQuery ?? (the equivalent of PHP if (!in_array('1', $a)) - I sw somehre that it will not work , and need to use something like this : !!~

share|improve this question
    
$.inArray(...) == -1 <----- there is no such element in an array – zerkms Jul 15 '12 at 11:19
up vote 36 down vote accepted

You are comparing a jQuery object (jQuery('input:first')) to strings (the elements of the array).
Change the code in order to compare the input's value (wich is a string) to the array elements:

if (jQuery.inArray(jQuery("input:first").val(), ar) != -1)

The inArray method returns -1 if the element wasn't found in the array, so as your bonus answer to how to determine if an element is not in an array, use this :

if(jQuery.inArray(el,arr) == -1){
    // the element is not in the array
};
share|improve this answer
    
Your first if assumes that -1 is treated as a falsy value? Shouldn't it be != -1? +1 for the complete answer. – Fabrício Matté Jul 15 '12 at 11:28
    
thanks, I was just modifying the code snippet and it must've slipped. – gion_13 Jul 15 '12 at 11:30
    
ok, thanks, it works great . but i have a clarification question - so there is no way to use the inArray() function without comparing it to == -1 , == 0 or similar ?? – Obmerk Kronen Jul 15 '12 at 11:56
    
no, bu if you really want to, you can make your own wrapper function : function notInArray(){return jQuery.inArray.apply(this,arguments)!=-1;} which takess the same argumets as the initial function and returns a boolean (true if the element is not in the array); – gion_13 Jul 15 '12 at 12:01
    
thanks . it all works great . I am a real novice in JS . 90% of he time those are syntax errors :-) I am glad that now it wasn´t :-) – Obmerk Kronen Jul 15 '12 at 12:26

As to your bonus question, try if (jQuery.inArray(jQuery("input:first").val(), ar) < 0)

share|improve this answer

Alternate solution of the values check

//Duplicate Title Entry 
    $.each(ar , function (i, val) {
        if ( jQuery("input:first").val()== val) alert('VALUE FOUND'+Valuecheck);
  });
share|improve this answer

Your Answer

 
discard

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.