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i have the following script

<select id="select1">
      <option value="1">1day</option>
      <option value="2">2day</option>
      <option value="3">3day</option>
    </select>

    <select id="select2">
      <option value="1">1day</option>
      <option value="2">2day</option>
      <option value="3">3day</option>
    </select>

and jquery

$("#select2").change(function() {
            var max_value = parseInt($("#select2 :selected").val());
            var min_value = parseInt($("#select1 :selected").val());
            if(max_value < min_value)
            {
              $("#select1").val($(this).val());
            }
        });

and now, what i can't understand anyway - if values of option elements are integer numbers, why i have to use parseInt()? in some cases it doesn't work without parseInt().

Thanks

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1  
Incidentally, you don't have to use parseInt here. + will do as good a job, e.g. var max_value = +$("#select2 :selected").val();. –  Andy E May 29 '10 at 18:51
    
@Andy E's head - ...O_O. I never knew that trick! I can't decide if that looks prettier or uglier than an explicit conversion... but I'll probably go for it when I deal with a variable name or an object property rather than a method call. –  Matchu May 29 '10 at 18:54
    
@Matchu: it's one of my favourite things about JS, saving all those bytes ;-) –  Andy E May 30 '10 at 10:12

4 Answers 4

up vote 5 down vote accepted

Form field values are always stored as strings. Whether or not they look like integers is irrelevant; they're strings. You need to convert them to integers before treating them as such :)

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http://www.uvsc.edu/disted/decourses/mct/2760/IN/krutscjo/lessons/06/ff_05.html

Javascript treats most everything as a string unless you explicitly tell it that it is a number. One notable example of this is getting values from form elements. Depending on the browser and user input you may get some unexpected results.

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Values are never integers as such, the fact that you put numbers there instead of who-knows-what is your choice only.

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but when it compare two numbers, what is the problem? –  Syom May 29 '10 at 18:39
    
1  
If you really want to know, watching "JavaScript: The Good Parts" will help you get the problem with not converting to the appropriate type before comparing as well as just about every common mistake there is: youtube.com/watch?v=hQVTIJBZook –  Michael La Voie May 29 '10 at 18:42

jQuery's val() function always returns a string. In many cases you can mix numbers and strings (in arithmic for example), when comparing two string variables, javascript will perform a string comparison, not a numeric comparison (which is to be expected)

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ok, in this case,why the following is false? if(14 > 12)..., even if it treats numbers as string? –  Syom May 29 '10 at 18:43
    
@Syom: are you sure that the form values are what you think they are? My Google Chrome Javascript console says that "14" > "12" is true. –  Matchu May 29 '10 at 18:55
    
(14 > 12) will return true. ("14" > "12") will also return true, but for different reasons. OTOH, ("15" > "124") will also return true –  Philippe Leybaert May 29 '10 at 18:58
    
@Matchu: When you assert String() > String(), the assertion is alphanumeric order based, so "a" < "b" == true, "11" < "12" == true, but "19" > "131" == true (9 is further down the character list than 3). This type of assertion with strings is commonly found in array.sort() functions. –  Andy E May 30 '10 at 11:54
    
@Andy E's head - Ahh. I had suspected something like that, but was too lazy to test it. Thanks :) –  Matchu May 30 '10 at 13:37

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