问题
I've got a simple java assignment. I need to determine if a string starts with the letter A through I. I know i have to use string.startsWith(); but I don't want to write, if(string.startsWith("a")); all the way to I, it seems in efficient. Should I be using a loop of some sort?
回答1:
You don't need regular expressions for this.
Try this, assuming you want uppercase only:
char c = string.charAt(0);
if (c >= 'A' && c <= 'I') { ... }
If you do want a regex solution however, you can use this (ideone):
if (string.matches("^[A-I].*$")) { ... }
回答2:
if ( string.charAt(0) >= 'A' && string.charAt(0) <= 'I' )
{
}
should do it
回答3:
How about this for brevity?
if (0 <= "ABCDEFGHI".indexOf(string.charAt(0))) {
// string starts with a character between 'A' and 'I' inclusive
}
回答4:
Try
string.charAt(0) >= 'a' && string.charAt(0) <= 'j'
回答5:
char c=string.toLowerCase().charAt(0);
if( c >= 'a' && c <= 'i' )
...
This makes it easy to extract it as a method:
public static boolean startsBetween(String s, char lowest, char highest) {
char c=s.charAt(0);
c=Character.toLowerCase(c); //thx refp
return c >= lowest && c <= highest;
}
which is HIGHLY preferred to any inline solution. For the win, tag it as final so java inlines it for you and gives you better performance than a coded-inline solution as well.
回答6:
if ( string.toUpperCase().charAt(0) >= 'A' && string.toUpperCase().charAt(0) <= 'I' )
should be the easiest version...
来源:https://stackoverflow.com/questions/8540015/determine-if-string-starts-with-letters-a-through-i