Regexp in Java
I want to make a regexp who do this
verify if a word is like [0-9A-Za-z][._-'][0-9A-Za-z]
example for valid words
A21a_c32
daA.da2
das'2
dsada
ASDA
12SA89
non valid words
dsa#da2
34$
Thanks
^[0-9A-Za-z]+[._'-]?[0-9A-Za-z]+$ (see matches on rubular.com)
Key points:
^ is the start of the string anchor
$ is the end of string anchor
+ is "one-or-more repetition of"
? is "zero-or-one repetition of" (i.e. "optional")
- in a character class definition is special (range definition)...
unless it's escaped, or first, or last
. unescaped outside of a character class definition is special...
but in a character class definition it's just a period
References
regular-expressions.info/Anchors, Repetition, Dot, Character Class
If [._'-] are optional, put the ? with the next characters, like this:
[0-9A-Za-z]+([._'-][0-9A-Za-z]+)?
"(\\p{Alnum})*([.'_-])?(\\p{Alnum})*"
In this solution I assume that the delimiter is optional, the empty string is also legal, and that the string may start/end with the delimiter, or be composed only of the delimiter.
Related
I have a regex expression which removes all non alphanumeric characters. It is working fine for all special characters apart from ^. Below is the regex expression I am using.
String strRefernce = strReference.replaceAll("[^\\p{IsAlphabetic}^\\p{IsDigit}]", "").toUpperCase();
I tried modifying it to
String strRefernce = strReference.replaceAll("[^\\p{IsAlphabetic}^\\p{IsDigit}]\\^", "").toUpperCase();
and
String strRefernce = strReference.replaceAll("[^\\p{IsAlphabetic}^\\p{IsDigit}\\^]", "").toUpperCase();
But these are also not able to remove this symbol.
Can someone please help me with this.
The first ^ inside [^...] is a negation mark making the character class a negated one (matching characters other than what is inside).
The second one inside is considered a literal - thus, it should not be matched with the regex. Remove it, and a caret will get matched with it:
"[^\\p{IsAlphabetic}\\p{IsDigit}]"
or even shorter:
"(?U)\\P{Alnum}"
The \P{Alnum} class stands for any character other than an alphanumeric character: [\p{Alpha}\p{Digit}] (see Java regex reference). When you pass (?U), the \P{Alnum} class will not match Unicode letters. See this IDEONE demo.
Add a + at the end if you want to remove whole chunks of symbols other than \\p{IsAlphabetic} and \\p{IsDigit}.
This works as well.
System.out.println("Text 尖酸[刻薄 ^, More _0As text °ÑÑ"".replaceAll("(?U)[^[\\W_]]+", " "));
Output
Text 尖酸 刻薄 More 0As text Ñ Ñ
Not sure but the word might be the more comprehensive list of alphanum characters.
[\\W_] is a class containing non-words and an underscore.
When put into a negative Java class construct it becomes
[^[\\W_]] is a negative class of a union between nothing and
a class containing non-words and an underscore.
I am trying to formulate a regex for the following scenario :
The String to match : mName87.com
So, the string may consist of any number of alpha numeric characters , but can contain only a single dot anywhere in the string .
I formulated this regex : [a-zA-Z0-9.], but it matches even multiple dots(.)
What am i doing wrong here ?
The regex you provided matches only a single character in the whole string you're trying to validate. There are a few things to take care of in your scenario
You want to match over the whole string, so your regex must start with ^ (beginning of the string) and end with $ (end of the string).
Then you want to accept any number of alpha-numeric characters, this is done with [a-zA-Z0-9]+, here the + means one or more characters.
Then match the point: \. (you must escape it here)
Finally accept more characters again.
All together the regex would then be:
^[a-zA-Z0-9]+\.[a-zA-Z0-9]+$
You can use this regex:
\\w*\\.\\w*
You can try here
Try with:
^([a-zA-Z0-9]+\.)+[a-zA-Z]$
use this regular expression ^[a-zA-Z0-9]*\.[a-zA-Z0-9.]*$
EDITED:
Try
([a-zA-Z0-9]+\.[a-zA-Z0-9]+)|(\.[a-zA-Z0-9]+)|([a-zA-Z0-9]+\.)
That is: [a word that ends with a dot] OR [two words and the dot in the middle] OR [a word that starts with a dot]
I'm trying to compare following strings with regex:
#[xyz="1","2"'"4"] ------- valid
#[xyz] ------------- valid
#[xyz="a5","4r"'"8dsa"] -- valid
#[xyz="asd"] -- invalid
#[xyz"asd"] --- invalid
#[xyz="8s"'"4"] - invalid
The valid pattern should be:
#[xyz then = sign then some chars then , then some chars then ' then some chars and finally ]. This means if there is characters after xyz then they must be in format ="XXX","XXX"'"XXX".
Or only #[xyz]. No character after xyz.
I have tried following regex, but it did not worked:
String regex = "#[xyz=\"[a-zA-z][0-9]\",\"[a-zA-z][0-9]\"'\"[a-zA-z][0-9]\"]";
Here the quotations (in part after xyz) are optional and number of characters between quotes are also not fixed and there could also be some characters before and after this pattern like asdadad #[xyz] adadad.
You can use the regex:
#\[xyz(?:="[a-zA-z0-9]+","[a-zA-z0-9]+"'"[a-zA-z0-9]+")?\]
See it
Expressed as Java string it'll be:
String regex = "#\\[xyz=\"[a-zA-z0-9]+\",\"[a-zA-z0-9]+\"'\"[a-zA-z0-9]+\"\\]";
What was wrong with your regex?
[...] defines a character class. When you want to match literal [ and ] you need to escape it by preceding with a \.
[a-zA-z][0-9] match a single letter followed by a single digit. But you want one or more alphanumeric characters. So you need [a-zA-Z0-9]+
Use this:
String regex = "#\\[xyz(=\"[a-zA-z0-9]+\",\"[a-zA-z0-9]+\"'\"[a-zA-z0-9]+\")?\\]";
When you write [a-zA-z][0-9] it expects a letter character and a digit after it. And you also have to escape first and last square braces because square braces have special meaning in regexes.
Explanation:
[a-zA-z0-9]+ means alphanumeric character (but not an underline) one or more times.
(=\"[a-zA-z0-9]+\",\"[a-zA-z0-9]+\"'\"[a-zA-z0-9]+\")? means that expression in parentheses can be one time or not at all.
Since square brackets have a special meaning in regex, you used it by yourself, they define character classes, you need to escape them if you want to match them literally.
String regex = "#\\[xyz=\"[a-zA-z][0-9]\",\"[a-zA-z][0-9]\"'\"[a-zA-z][0-9]\"\\]";
The next problem is with '"[a-zA-z][0-9]' you define "first a letter, second a digit", you need to join those classes and add a quantifier:
String regex = "#\\[xyz=\"[a-zA-z0-9]+\",\"[a-zA-z0-9]+\"'\"[a-zA-z0-9]+\"\\]";
See it here on Regexr
there could also be some characters before and after this pattern like
asdadad #[xyz] adadad.
Regex should be:
String regex = "(.)*#\\[xyz(=\"[a-zA-z0-9]+\",\"[a-zA-z0-9]+\"'\"[a-zA-z0-9]+\")?\\](.)*";
The First and last (.)* will allow any string before the pattern as you have mentioned in your edit. As said by #ademiban this (=\"[a-zA-z0-9]+\",\"[a-zA-z0-9]+\"'\"[a-zA-z0-9]+\")? will come one time or not at all. Other mistakes are also very well explained by Others +1 to all other.
I have a question about strings in Java. Let's say, I have a string like so:
String str = "The . startup trace ?state is info?";
As the string contains the special character like "?" I need the string to be replaced with "\?" as per my requirement. How do I replace special characters with "\"? I tried the following way.
str.replace("?","\?");
But it gives a compilation error. Then I tried the following:
str.replace("?","\\?");
When I do this it replaces the special characters with "\\". But when I print the string, it prints with single slash. I thought it is taking single slash only but when I debugged I found that the variable is taking "\\".
Can anyone suggest how to replace the special characters with single slash ("\")?
On escape sequences
A declaration like:
String s = "\\";
defines a string containing a single backslash. That is, s.length() == 1.
This is because \ is a Java escape character for String and char literals. Here are some other examples:
"\n" is a String of length 1 containing the newline character
"\t" is a String of length 1 containing the tab character
"\"" is a String of length 1 containing the double quote character
"\/" contains an invalid escape sequence, and therefore is not a valid String literal
it causes compilation error
Naturally you can combine escape sequences with normal unescaped characters in a String literal:
System.out.println("\"Hey\\\nHow\tare you?");
The above prints (tab spacing may vary):
"Hey\
How are you?
References
JLS 3.10.6 Escape Sequences for Character and String Literals
See also
Is the char literal '\"' the same as '"' ?(backslash-doublequote vs only-doublequote)
Back to the problem
Your problem definition is very vague, but the following snippet works as it should:
System.out.println("How are you? Really??? Awesome!".replace("?", "\\?"));
The above snippet replaces ? with \?, and thus prints:
How are you\? Really\?\?\? Awesome!
If instead you want to replace a char with another char, then there's also an overload for that:
System.out.println("How are you? Really??? Awesome!".replace('?', '\\'));
The above snippet replaces ? with \, and thus prints:
How are you\ Really\\\ Awesome!
String API links
replace(CharSequence target, CharSequence replacement)
Replaces each substring of this string that matches the literal target sequence with the specified literal replacement sequence.
replace(char oldChar, char newChar)
Returns a new string resulting from replacing all occurrences of oldChar in this string with newChar.
On how regex complicates things
If you're using replaceAll or any other regex-based methods, then things becomes somewhat more complicated. It can be greatly simplified if you understand some basic rules.
Regex patterns in Java is given as String values
Metacharacters (such as ? and .) have special meanings, and may need to be escaped by preceding with a backslash to be matched literally
The backslash is also a special character in replacement String values
The above factors can lead to the need for numerous backslashes in patterns and replacement strings in a Java source code.
It doesn't look like you need regex for this problem, but here's a simple example to show what it can do:
System.out.println(
"Who you gonna call? GHOSTBUSTERS!!!"
.replaceAll("[?!]+", "<$0>")
);
The above prints:
Who you gonna call<?> GHOSTBUSTERS<!!!>
The pattern [?!]+ matches one-or-more (+) of any characters in the character class [...] definition (which contains a ? and ! in this case). The replacement string <$0> essentially puts the entire match $0 within angled brackets.
Related questions
Having trouble with Splitting text. - discusses common mistakes like split(".") and split("|")
Regular expressions references
regular-expressions.info
Character class and Repetition with Star and Plus
java.util.regex.Pattern and Matcher
In case you want to replace ? with \?, there are 2 possibilities: replace and replaceAll (for regular expressions):
str.replace("?", "\\?")
str.replaceAll("\\?","\\\\?");
The result is "The . startup trace \?state is info\?"
If you want to replace ? with \, just remove the ? character from the second argument.
But when I print the string, it prints
with single slash.
Good. That's exactly what you want, isn't it?
There are two simple rules:
A backslash inside a String literal has to be specified as two to satisfy the compiler, i.e. "\". Otherwise it is taken as a special-character escape.
A backslash in a regular expresion has to be specified as two to satisfy regex, otherwise it is taken as a regex escape. Because of (1) this means you have to write 2x2=4 of them:"\\\\" (and because of the forum software I actually had to write 8!).
String str="\\";
str=str.replace(str,"\\\\");
System.out.println("New String="+str);
Out put:- New String=\
In java "\\" treat as "\". So, the above code replace a "\" single slash into "\\".
I need 2 simple reg exps that will:
Match if a string is contained within square brackets ([] e.g [word])
Match if string is contained within double quotes ("" e.g "word")
\[\w+\]
"\w+"
Explanation:
The \[ and \] escape the special bracket characters to match their literals.
The \w means "any word character", usually considered same as alphanumeric or underscore.
The + means one or more of the preceding item.
The " are literal characters.
NOTE: If you want to ensure the whole string matches (not just part of it), prefix with ^ and suffix with $.
And next time, you should be able to answer this yourself, by reading regular-expressions.info
Update:
Ok, so based on your comment, what you appear to be wanting to know is if the first character is [ and the last ] or if the first and last are both " ?
If so, these will match those:
^\[.*\]$ (or ^\\[.*\\]$ in a Java String)
"^.*$"
However, unless you need to do some special checking with the centre characters, simply doing:
if ( MyString.startsWith("[") && MyString.endsWith("]") )
and
if ( MyString.startsWith("\"") && MyString.endsWith("\"") )
Which I suspect would be faster than a regex.
Important issues that may make this hard/impossible in a regex:
Can [] be nested (e.g. [foo [bar]])? If so, then a traditional regex cannot help you. Perl's extended regexes can, but it is probably better to write a parser.
Can [, ], or " appear escaped (e.g. "foo said \"bar\"") in the string? If so, see How can I match double-quoted strings with escaped double-quote characters?
Is it possible for there to be more than one instance of these in the string you are matching? If so, you probably want to use the non-greedy quantifier modifier (i.e. ?) to get the smallest string that matches: /(".*?"|\[.*?\])/g
Based on comments, you seem to want to match things like "this is a "long" word"
#!/usr/bin/perl
use strict;
use warnings;
my $s = 'The non-string "this is a crazy "string"" is bad (has own delimiter)';
print $s =~ /^.*?(".*").*?$/, "\n";
Are they two separate expressions?
[[A-Za-z]+]
\"[A-Za-z]+\"
If they are in a single expression:
[[\"]+[a-zA-Z]+[]\"]+
Remember that in .net you'll need to escape the double quotes " by ""