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I see this code from a book:

var a = "one";
var b = "four";
a>b; // will return true

but it doesn't mentioned why "one" is bigger than "four". I tried c = "a" and it is smaller than a and b. I want to know how javascript compare these strings.

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1  
lexicographical order –  Prince John Wesley Aug 17 '11 at 4:11
    
but when I compare "one" and "a", "one" is still the bigger one –  patriot7 Aug 17 '11 at 4:34
    
"one" > "a" because "o" > "a". Do you understand why "o" > "a"? –  Matt Ball Aug 17 '11 at 4:48
    
No, I'm trying to search something. Would you please give me some tips? –  patriot7 Aug 17 '11 at 4:51
    
The further along the alphabet, the higher the value. These are all true: "z" > "y"; "y" > "c"; "c" > "b"; "b" > "a"; –  Luke Nov 17 '14 at 23:01

3 Answers 3

up vote 5 down vote accepted

Because, as in many programming languages, strings are compared lexicographically.

You can think of this as a fancier version of alphabetical ordering, the difference being that alphabetic ordering only covers the 26 characters a through z.


This answer is in response to a question, but the logic is exactly the same. Another good one: String Compare "Logic".

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3  
When in doubt, dig out the spec. In this case, see section 11.8.5 of the ECMAScript Spec.. Of course, for easier to parse answers, the SO archives works, too. :-) –  mmigdol Aug 17 '11 at 4:49
1  
The best explanation to explain the 'values' of characters is to point the user to an ASCII table that denotes the decimal value of each character. –  ps2goat Nov 19 '14 at 15:15
    
@ps2goat good point. Feel free to suggest an edit to this answer to add that :) –  Matt Ball Nov 19 '14 at 17:44

"one" starts with 'o', "four" starts with 'f', 'o' is later in the alphabet than 'f' so "one" is greater than "four". See this page for some nice examples of JavaScript string comparisons (with explanations!).

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Javascript uses Lexicographical order for the > operator. 'f' proceeds 'o' so the comparison "one" > "four" returns true

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