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I'm working on a blog theme that has a word count for each entry on the side of every post. I can get the word count to work, but it only works on the first entry, and then displays the same count for every post. I need to modify the script below to find the closest div.entrycontent and count the words in it, but for every entry. Below is my entry markup code, if anyone could help it'd be appreciated.

<div class="entry">
    <div class="entryinfo">
        <script type="text/javascript">
            var text = $('.entrycontent').text();
            var wordCount = text.split(' ').length;
            $("span.words").text(wordCount + ' words');
        </script>
        <span class="words"></span>
    </div>
    <div class="entrycontent">
        Lorem ipsum dolor amet...
    </div>
</div>
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it seems to me as though you should do the word count on the server and probably store it in the DB, counting the words every time your page is displayed seems wasteful. –  Nathan Koop May 25 '12 at 15:42
1  
Where's your <char id="chars"> ? –  artlung May 25 '12 at 15:42
1  
Quick suggestion: place a generic script at the bottom of the page. If you want your word count to be dynamic, then you'll need to set an event listener on keypress. You can get the current element by looking at the element on focus. –  Matt May 25 '12 at 15:45
    
@NathanKoop this website isn't running on a database, this is a tumblr blog so I need to use jQuery. –  James Charless Dickinson May 25 '12 at 15:48
    
ah, makes sense. –  Nathan Koop May 25 '12 at 15:56

3 Answers 3

up vote 1 down vote accepted

You need to loop through using .each().

Put this script once on the page, either at the bottom or at the top inside a $(document).ready(function(){...}); block:

$('.entry').each(function(i,el) {
    var $entry = $(this),
        text = $entry.find('.entrycontent').text(),
        wordCount = text.split(' ').length;
    $entry.find("span.words").text(wordCount + ' words');
    $entry.find("span.chars").text(charCount); // IDs must be unique, use classes instead
});

UPDATE

When $entry.find('.entrycontent').text() contains a lot of whitespace, it's splitting on each of those space characters whether it separates a word or not. Try this:

$('.entry').each(function(i,el) {
    var $entry = $(this),
        text = $entry.find('.entrycontent').text(),
        wordCount = text.split(/\s+/).length;
    $entry.find("span.words").text(wordCount + ' words');
});

.split() docs

UPDATE 2

Well, if you want a true word count, I suppose that we should use .match() instead of .split():

$('.entry').each(function(i,el) {
    var $entry = $(this),
        text = $entry.find('.entrycontent').text(),
        marr = text.match(/\w+/g) || [],  // null if no matches
        wordCount = marr.length;
    $entry.find("span.words").text(wordCount + ' words');
});
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This worked the best, but the count is off.. It's saying picture posts have 222 words when they actually have 0... I think it may be counting HTML which is a problem. –  James Charless Dickinson May 25 '12 at 15:48
    
Hard to know without seeing actual code. Reread the .text() docs and see if that points you in the right direction. –  Blazemonger May 25 '12 at 15:49
    
jamestestblog3.tumblr.com Does that give you anything? –  James Charless Dickinson May 25 '12 at 15:49
    
Found the problem. updated answer –  Blazemonger May 25 '12 at 16:01
    
I just read an article about that but now it's displaying "1 words" –  James Charless Dickinson May 25 '12 at 16:02
$('.entry').each(function() {
 var text = $(".entrycontent", this).text(),
     wordCount = text.split(/\s+/).length;
 $("span.words", this).text(wordCount + ' words');
 $("span#chars", this).text(charCount);
})
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Didn't work.... –  James Charless Dickinson May 25 '12 at 15:49

It probably has something to do with your selector being tied to any element that has a class of entrycontent.

I would recommend iterating over each entry like so:

$(".entrycontent").each(function() {
    var entryInfo = $(this).prev();
    var text = $(this).text(); 
    var wordCount = text.split(' ').length;  
    entryInfo.find("span.words").text(wordCount + ' words');  
});
share|improve this answer
    
Did not work.. hmmm –  James Charless Dickinson May 25 '12 at 15:52

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