I am trying to mock a Java method with multiple arguments. One of the arguments is a String. The String can take on many values while my program is running, but it may not be null or blank (it must contain at least one non-whitespace character).
Using anyString() is insufficient here. What is a good way to mock a method like MyClass.bar() (shown below)?
public class MyClass {
public Foo bar(String str, int myInt) {
assert(!str.isBlank());
return new Foo(str, myInt);
}
}
Sorry, the example is contrived - only for illustration purposes.
Regex is your friend here. The '\s' character tests for whitespace while the '\S' command tests for non-whitespace. The Matcher command find will search all characters and return true if any match the regex. You will need the pattern and matcher classes, from Java.util.regex package.
Pattern p = Pattern.compile("\\S");
Matcher m = p.matcher(str);
m.find();
/*
Will return true if and only if the string str contains a non-whitespace character.
Otherwise, returns false.
*/
Note that a simple alternative is to remove all whitespace from the string and then check that the length is not 0. str.replaceAll("\\s+","").length() == 0 will return true if the string is only whitespace. The plus in the regex is optional, and it will run a bit faster without it, unless the string contains a lot of whitespace characters.
Related
Objective: for a given term, I want to check if that term exist at the start of the word. For example if the term is 't'. then in the sentance:
"This is the difficult one Thats it"
I want it to return "true" because of :
This, the, Thats
so consider:
public class HelloWorld{
public static void main(String []args){
String term = "t";
String regex = "/\\b"+term+"[^\\b]*?\\b/gi";
String str = "This is the difficult one Thats it";
System.out.println(str.matches(regex));
}
}
I am getting following Exception:
Exception in thread "main" java.util.regex.PatternSyntaxException:
Illegal/unsupported escape sequence near index 7
/\bt[^\b]*?\b/gi
^
at java.util.regex.Pattern.error(Pattern.java:1924)
at java.util.regex.Pattern.escape(Pattern.java:2416)
at java.util.regex.Pattern.range(Pattern.java:2577)
at java.util.regex.Pattern.clazz(Pattern.java:2507)
at java.util.regex.Pattern.sequence(Pattern.java:2030)
at java.util.regex.Pattern.expr(Pattern.java:1964)
at java.util.regex.Pattern.compile(Pattern.java:1665)
at java.util.regex.Pattern.<init>(Pattern.java:1337)
at java.util.regex.Pattern.compile(Pattern.java:1022)
at java.util.regex.Pattern.matches(Pattern.java:1128)
at java.lang.String.matches(String.java:2063)
at HelloWorld.main(HelloWorld.java:8)
Also the following does not work:
import java.util.regex.*;
public class HelloWorld{
public static void main(String []args){
String term = "t";
String regex = "\\b"+term+"gi";
//String regex = ".";
System.out.println(regex);
String str = "This is the difficult one Thats it";
System.out.println(str.matches(regex));
Pattern p = Pattern.compile(regex);
Matcher m = p.matcher(str);
System.out.println(m.find());
}
}
Example:
{ This , one, Two, Those, Thanks }
for words This Two Those Thanks; result should be true.
Thanks
Since you're using the Java regex engine, you need to write the expressions in a way Java understands. That means removing trailing and leading slashes and adding flags as (?<flags>) at the beginning of the expression.
Thus you'd need this instead:
String regex = "(?i)\\b"+term+".*?\\b"
Have a look at regular-expressions.info/java.html for more information. A comparison of supported features can be found here (just as an entry point): regular-expressions.info/refbasic.html
In Java we don't surround regex with / so instead of "/regex/flags" we just write regex. If you want to add flags you can do it with (?flags) syntax and place it in regex at position from which flag should apply, for instance a(?i)a will be able to find aa and aA but not Aa because flag was added after first a.
You can also compile your regex into Pattern like this
Pattern pattern = Pattern.compile(regex, flags);
where regex is String (again not enclosed with /) and flag is integer build from constants from Pattern like Pattern.DOTALL or when you need more flags you can use Pattern.CASE_INSENSITIVE|Pattern.MULTILINE.
Next thing which may confuse you is matches method. Most people are mistaken by its name, because they assume that it will try to check if it can find in string element which can be matched by regex, but in reality, it checks if entire string can be matched by regex.
What you seem to want is mechanism to test of some regex can be found at least once in string. In that case you may either
add .* at start and end of your regex to let other characters which are not part of element you want to find be matched by regex engine, but this way matches must iterate over entire string
use Matcher object build from Pattern (representing your regex), and use its find() method, which will iterate until it finds match for regex, or will find end of string. I prefer this approach because it will not need to iterate over entire string, but will stop when match will be found.
So your code could look like
String str = "This is the difficult one Thats it";
String term = "t";
Pattern pattern = Pattern.compile("\\b"+term, Pattern.CASE_INSENSITIVE);
Matcher matcher = pattern.matcher(str);
System.out.println(matcher.find());
In case your term could contain some regex special characters but you want regex engine to treat them as normal characters you need to make sure that they will be escaped. To do this you can use Pattern.quote method which will add all necessary escapes for you, so instead of
Pattern pattern = Pattern.compile("\\b"+term, Pattern.CASE_INSENSITIVE);
for safety you should use
Pattern pattern = Pattern.compile("\\b"+Pattern.quote(term), Pattern.CASE_INSENSITIVE);
String regex = "(?i)\\b"+term;
In Java, the modifiers must be inserted between "(?" and ")" and there is a variant for turning them off again: "(?-" and ")".
For finding all words beginning with "T" or "t", you may want to use Matcher's find method repeatedly. If you just need the offset, Matcher's start method returns the offset.
If you need to match the full word, use
String regex = "(?i)\\b"+term + "\\w*";
String str = "This is the difficult one Thats it";
String term = "t";
Pattern pattern = Pattern.compile("^[+"+term+"].*",Pattern.CASE_INSENSITIVE);
String[] strings = str.split(" ");
for (String s : strings) {
if (pattern.matcher(s).matches()) {
System.out.println(s+"-->"+true);
} else {
System.out.println(s+"-->"+false);
}
}
I'm trying to match a regular expression to textbook definitions that I get from a website.
The definition always has the word with a new line followed by the definition. For example:
Zither
Definition: An instrument of music used in Austria and Germany It has from thirty to forty wires strung across a shallow sounding board which lies horizontally on a table before the performer who uses both hands in playing on it Not to be confounded with the old lute shaped cittern or cithern
In my attempts to get just the word (in this case "Zither") I keep getting the newline character.
I tried both ^(\w+)\s and ^(\S+)\s without much luck. I thought that maybe ^(\S+)$ would work, but that doesn't seem to successfully match the word at all. I've been testing with rubular, http://rubular.com/r/LPEHCnS0ri; which seems to successfully match all my attempts the way I want, despite the fact that Java doesn't.
Here's my snippet
String str = ...; //Here the string is assigned a word and definition taken from the internet like given in the example above.
Pattern rgx = Pattern.compile("^(\\S+)$");
Matcher mtch = rgx.matcher(str);
if (mtch.find()) {
String result = mtch.group();
terms.add(new SearchTerm(result, System.nanoTime()));
}
This is easily solved by triming the resulting string, but that seems like it should be unnecessary if I'm already using a regular expression.
All help is greatly appreciated. Thanks in advance!
Try using the Pattern.MULTILINE option
Pattern rgx = Pattern.compile("^(\\S+)$", Pattern.MULTILINE);
This causes the regex to recognise line delimiters in your string, otherwise ^ and $ just match the start and end of the string.
Although it makes no difference for this pattern, the Matcher.group() method returns the entire match, whereas the Matcher.group(int) method returns the match of the particular capture group (...) based on the number you specify. Your pattern specifies one capture group which is what you want captured. If you'd included \s in your Pattern as you wrote you tried, then Matcher.group() would have included that whitespace in its return value.
With regular expressions the first group is always the complete matching string. In your case you want group 1, not group 0.
So changing mtch.group() to mtch.group(1) should do the trick:
String str = ...; //Here the string is assigned a word and definition taken from the internet like given in the example above.
Pattern rgx = Pattern.compile("^(\\w+)\s");
Matcher mtch = rgx.matcher(str);
if (mtch.find()) {
String result = mtch.group(1);
terms.add(new SearchTerm(result, System.nanoTime()));
}
A late response, but if you are not using Pattern and Matcher, you can use this alternative of DOTALL in your regex string
(?s)[Your Expression]
Basically (?s) also tells dot to match all characters, including line breaks
Detailed information: http://www.vogella.com/tutorials/JavaRegularExpressions/article.html
Just replace:
String result = mtch.group();
By:
String result = mtch.group(1);
This will limit your output to the contents of the capturing group (e.g. (\\w+)) .
Try the next:
/* The regex pattern: ^(\w+)\r?\n(.*)$ */
private static final REGEX_PATTERN =
Pattern.compile("^(\\w+)\\r?\\n(.*)$");
public static void main(String[] args) {
String input = "Zither\n Definition: An instrument of music";
System.out.println(
REGEX_PATTERN.matcher(input).matches()
); // prints "true"
System.out.println(
REGEX_PATTERN.matcher(input).replaceFirst("$1 = $2")
); // prints "Zither = Definition: An instrument of music"
System.out.println(
REGEX_PATTERN.matcher(input).replaceFirst("$1")
); // prints "Zither"
}
How to check that all lines match regex pattern in Java.
I mean that I be able to split lines myself in while loop. But is there any library or standard API, which implement this functionality?
UPDATE This is Ruby solution:
if text =~ /PATTERN/
Here's a utility method using Guava that returns true if every line in the supplied text matches the supplied pattern:
public static boolean matchEachLine(String text, Pattern pattern){
return FluentIterable.from(Splitter.on('\n').split(text))
.filter(Predicates.not(Predicates.contains(pattern)))
.isEmpty();
}
This is one I use
public static boolean multilineMatches(final String regex, final String text) {
final Matcher m = Pattern.compile("^(.*)$", Pattern.MULTILINE).matcher(text);
final Pattern p = Pattern.compile(regex);
while(m.find()) {
if (!p.matcher(m.group()).find()) {
return false;
}
}
return true;
}
There is no standard API functionality I know of to do this, however, something like this is easy enough:
string.matches("(What you want to match(\r?\n|$))*+")
Usage:
String string = "This is a string\nThis is a string\nThis is a string";
System.out.println(string.matches("(This is a string(\r?\n|$))*+"));
\r?\n covers the most common new-lines.
$ is end of string.
(\r?\n|$) is a new-line or the end of string.
*+ is zero or more - but this is a possessive qualifier.
So the whole thing basically checks that every line matches This is a string.
If you want it in a function:
boolean allLinesMatch(String string, String regex)
{
return string.matches("(" + regex + "(\r?\n|$))*+");
}
Java regex reference.
Prime example of why you need a possessive qualifier:
If you take the string This is a string. repeated a few times (34 times to be exact) but have the last string be This is a string.s (won't match the regex) and have What you want to match be .* .* .*\\., you end up waiting a quite while with *.
* example - runtime on my machine - more than a few hours, after which I stopped it.
*+ example - runtime on my machine - much less than a second.
See Catastrophic Backtracking for more information.
I have strings with parentheses and also escaped characters. I need to match against these characters and also delete them. In the following code, I use matches() and replaceAll() with the same regex, but the matches() returns false, while the replaceAll() seems to match just fine, because the replaceAll() executes and removes the characters. Can someone explain?
String input = "(aaaa)\\b";
boolean matchResult = input.matches("\\(|\\)|\\\\[a-z]+");
System.out.printf("matchResult=%s\n", matchResult);
String output = input.replaceAll("\\(|\\)|\\\\[a-z]+", "");
System.out.printf("INPUT: %s --> OUTPUT: %s\n", input, output);
Prints out:
matchResult=false
INPUT: (aaaa) --> OUTPUT: aaaa
matches matches the whole input, not part of it.
The regular expression \(|\)|\\[a-z]+ doesn't describe the whole word, but only parts of it, so in your case it fails.
What matches is doing has already been explained by Binyamin Sharet. I want to extend this a bit.
Java does not have a "findall" or a "g" modifier like other languages have it to get all matches at once.
The Java Matcher class knows only two methods to use a pattern against a string (without replacing it)
matches(): matches the whole string against the pattern
find(): returns the next match
If you want to get all things that fits your pattern, you need to use find() in a loop, something like this:
Pattern p = Pattern
.compile("\\(|\\)|\\\\[a-z]+");
Matcher m = p.matcher(text);
while(m.find()){
System.out.println(m.group(0));
}
or if you are only interested if your pattern exists in the string
if (m.find()) {
System.out.println(m.group());
} else {
System.out.println("not found");
}
I want to remove special characters like:
- + ^ . : ,
from an String using Java.
That depends on what you define as special characters, but try replaceAll(...):
String result = yourString.replaceAll("[-+.^:,]","");
Note that the ^ character must not be the first one in the list, since you'd then either have to escape it or it would mean "any but these characters".
Another note: the - character needs to be the first or last one on the list, otherwise you'd have to escape it or it would define a range ( e.g. :-, would mean "all characters in the range : to ,).
So, in order to keep consistency and not depend on character positioning, you might want to escape all those characters that have a special meaning in regular expressions (the following list is not complete, so be aware of other characters like (, {, $ etc.):
String result = yourString.replaceAll("[\\-\\+\\.\\^:,]","");
If you want to get rid of all punctuation and symbols, try this regex: \p{P}\p{S} (keep in mind that in Java strings you'd have to escape back slashes: "\\p{P}\\p{S}").
A third way could be something like this, if you can exactly define what should be left in your string:
String result = yourString.replaceAll("[^\\w\\s]","");
This means: replace everything that is not a word character (a-z in any case, 0-9 or _) or whitespace.
Edit: please note that there are a couple of other patterns that might prove helpful. However, I can't explain them all, so have a look at the reference section of regular-expressions.info.
Here's less restrictive alternative to the "define allowed characters" approach, as suggested by Ray:
String result = yourString.replaceAll("[^\\p{L}\\p{Z}]","");
The regex matches everything that is not a letter in any language and not a separator (whitespace, linebreak etc.). Note that you can't use [\P{L}\P{Z}] (upper case P means not having that property), since that would mean "everything that is not a letter or not whitespace", which almost matches everything, since letters are not whitespace and vice versa.
Additional information on Unicode
Some unicode characters seem to cause problems due to different possible ways to encode them (as a single code point or a combination of code points). Please refer to regular-expressions.info for more information.
This will replace all the characters except alphanumeric
replaceAll("[^A-Za-z0-9]","");
As described here
http://developer.android.com/reference/java/util/regex/Pattern.html
Patterns are compiled regular expressions. In many cases, convenience methods such as String.matches, String.replaceAll and String.split will be preferable, but if you need to do a lot of work with the same regular expression, it may be more efficient to compile it once and reuse it. The Pattern class and its companion, Matcher, also offer more functionality than the small amount exposed by String.
public class RegularExpressionTest {
public static void main(String[] args) {
System.out.println("String is = "+getOnlyStrings("!&(*^*(^(+one(&(^()(*)(*&^%$##!#$%^&*()("));
System.out.println("Number is = "+getOnlyDigits("&(*^*(^(+91-&*9hi-639-0097(&(^("));
}
public static String getOnlyDigits(String s) {
Pattern pattern = Pattern.compile("[^0-9]");
Matcher matcher = pattern.matcher(s);
String number = matcher.replaceAll("");
return number;
}
public static String getOnlyStrings(String s) {
Pattern pattern = Pattern.compile("[^a-z A-Z]");
Matcher matcher = pattern.matcher(s);
String number = matcher.replaceAll("");
return number;
}
}
Result
String is = one
Number is = 9196390097
Try replaceAll() method of the String class.
BTW here is the method, return type and parameters.
public String replaceAll(String regex,
String replacement)
Example:
String str = "Hello +-^ my + - friends ^ ^^-- ^^^ +!";
str = str.replaceAll("[-+^]*", "");
It should remove all the {'^', '+', '-'} chars that you wanted to remove!
To Remove Special character
String t2 = "!##$%^&*()-';,./?><+abdd";
t2 = t2.replaceAll("\\W+","");
Output will be : abdd.
This works perfectly.
Use the String.replaceAll() method in Java.
replaceAll should be good enough for your problem.
You can remove single char as follows:
String str="+919595354336";
String result = str.replaceAll("\\\\+","");
System.out.println(result);
OUTPUT:
919595354336
If you just want to do a literal replace in java, use Pattern.quote(string) to escape any string to a literal.
myString.replaceAll(Pattern.quote(matchingStr), replacementStr)