I have a string in what is the best way to put the things in between $ inside a list in java?
String temp = $abc$and$xyz$;
how can i get all the variables within $ sign as a list in java
[abc, xyz]
i can do using stringtokenizer but want to avoid using it if possible.
thx
Maybe you could think about calling String.split(String regex) ...
The pattern is simple enough that String.split should work here, but in the more general case, one alternative for StringTokenizer is the much more powerful java.util.Scanner.
String text = "$abc$and$xyz$";
Scanner sc = new Scanner(text);
while (sc.findInLine("\\$([^$]*)\\$") != null) {
System.out.println(sc.match().group(1));
} // abc, xyz
The pattern to find is:
\$([^$]*)\$
\_____/ i.e. literal $, a sequence of anything but $ (captured in group 1)
1 and another literal $
The […] is a character class. Something like [aeiou] matches one of any of the lowercase vowels. [^…] is a negated character class. [^aeiou] matches one of anything but the lowercase vowels.
(…) is used for grouping. (pattern) is a capturing group and creates a backreference.
The backslash preceding the $ (outside of character class definition) is used to escape the $, which has a special meaning as the end of line anchor. That backslash is doubled in a String literal: "\\" is a String of length one containing a backslash).
This is not a typical usage of Scanner (usually the delimiter pattern is set, and tokens are extracted using next), but it does show how'd you use findInLine to find an arbitrary pattern (ignoring delimiters), and then using match() to access the MatchResult, from which you can get individual group captures.
You can also use this Pattern in a Matcher find() loop directly.
Matcher m = Pattern.compile("\\$([^$]*)\\$").matcher(text);
while (m.find()) {
System.out.println(m.group(1));
} // abc, xyz
Related questions
Validating input using java.util.Scanner
Scanner vs. StringTokenizer vs. String.Split
Just try this one:temp.split("\\$");
I would go for a regex myself, like Riduidel said.
This special case is, however, simple enough that you can just treat the String as a character sequence, and iterate over it char by char, and detect the $ sign. And so grab the strings yourself.
On a side node, I would try to go for different demarkation characters, to make it more readable to humans. Use $ as start-of-sequence and something else as end-of-sequence for instance. Or something like I think the Bash shell uses: ${some_value}. As said, the computer doesn't care but you debugging your string just might :)
As for an appropriate regex, something like (\\$.*\\$)* or so should do. Though I'm no expert on regexes (see http://www.regular-expressions.info for nice info on regexes).
Basically I'd ditto Khotyn as the easiest solution. I see you post on his answer that you don't want zero-length tokens at beginning and end.
That brings up the question: What happens if the string does not begin and end with $'s? Is that an error, or are they optional?
If it's an error, then just start with:
if (!text.startsWith("$") || !text.endsWith("$"))
return "Missing $'s"; // or whatever you do on error
If that passes, fall into the split.
If the $'s are optional, I'd just strip them out before splitting. i.e.:
if (text.startsWith("$"))
text=text.substring(1);
if (text.endsWith("$"))
text=text.substring(0,text.length()-1);
Then do the split.
Sure, you could make more sophisticated regex's or use StringTokenizer or no doubt come up with dozens of other complicated solutions. But why bother? When there's a simple solution, use it.
PS There's also the question of what result you want to see if there are two $'s in a row, e.g. "$foo$$bar$". Should that give ["foo","bar"], or ["foo","","bar"] ? Khotyn's split will give the second result, with zero-length strings. If you want the first result, you should split("\$+").
If you want a simple split function then use Apache Commons Lang which has StringUtils.split. The java one uses a regex which can be overkill/confusing.
You can do it in simple manner writing your own code.
Just use the following code and it will do the job for you
import java.util.ArrayList;
import java.util.List;
public class MyStringTokenizer {
/**
* #param args
*/
public static void main(String[] args) {
List <String> result = getTokenizedStringsList("$abc$efg$hij$");
for(String token : result)
{
System.out.println(token);
}
}
private static List<String> getTokenizedStringsList(String string) {
List <String> tokenList = new ArrayList <String> ();
char [] in = string.toCharArray();
StringBuilder myBuilder = null;
int stringLength = in.length;
int start = -1;
int end = -1;
{
for(int i=0; i<stringLength;)
{
myBuilder = new StringBuilder();
while(i<stringLength && in[i] != '$')
i++;
i++;
while((i)<stringLength && in[i] != '$')
{
myBuilder.append(in[i]);
i++;
}
tokenList.add(myBuilder.toString());
}
}
return tokenList;
}
}
You can use
String temp = $abc$and$xyz$;
String array[]=temp.split(Pattern.quote("$"));
List<String> list=new ArrayList<String>();
for(int i=0;i<array.length;i++){
list.add(array[i]);
}
Now the list has what you want.
Related
When I split a string in python, adjacent space delimiters are merged:
>>> str = "hi there"
>>> str.split()
['hi', 'there']
In Java, the delimiters are not merged:
$ cat Split.java
class Split {
public static void main(String args[]) {
String str = "hi there";
String result = "";
for (String tok : str.split(" "))
result += tok + ",";
System.out.println(result);
}
}
$ javac Split.java ; java Split
hi,,,,,,,,,,,,,,there,
Is there a straightforward way to get python space split semantics in java?
String.split accepts a regular expression, so provide it with one that matches adjacent whitespace:
str.split("\\s+")
If you want to emulate the exact behaviour of Python's str.split(), you'd need to trim as well:
str.trim().split("\\s+")
Quote from the Python docs on str.split():
If sep is not specified or is None, a different splitting algorithm is applied: runs of consecutive whitespace are regarded as a single separator, and the result will contain no empty strings at the start or end if the string has leading or trailing whitespace. Consequently, splitting an empty string or a string consisting of just whitespace with a None separator returns [].
So the above is still not an exact equivalent, because it will return [''] for the empty string, but it's probably okay for your purposes :)
Use str.split("\\s+") instead. This will do what you need.
Java uses Regex to split.
so splitting on a single space will absolutely give you many array elements.
Python split, ltrims and rtrims and then takes runs of spaces into a single space when no parameter has been passed.
So it would more properly be
"my string".trim().split("\\s+");
The problem with Niklas B.'s answer is that trim has its own definition of whitespace, i.e., anything with code up to '\u0020'. The following should get close enough to the Python version, including the fix for the empty string:
class TestSplit {
private static final String[] EMPTY = {};
private static String[] pySplit(String s) {
s = s.replaceAll("^\\s+", "").replaceAll("\\s+$", "");
if (s.isEmpty()) return EMPTY;
return s.split("\\s+");
}
}
In java, String.split takes a regex. So you can do str.split(" +") to get python semantics.
I am trying to break apart a very simple collection of strings that come in the forms of
0|0
10|15
30|55
etc etc. Essentially numbers that are seperated by pipes.
When I use java's string split function with .split("|"). I get somewhat unpredictable results. white space in the first slot, sometimes the number itself isn't where I thought it should be.
Can anybody please help and give me advice on how I can use a reg exp to keep ONLY the integers?
I was asked to give the code trying to do the actual split. So allow me to do that in hopes to clarify further my problem :)
String temp = "0|0";
String splitString = temp.split("|");
results
\n
0
|
0
I am trying to get
0
0
only. Forever grateful for any help ahead of time :)
I still suggest to use split(), it skips null tokens by default. you want to get rid of non numeric characters in the string and only keep pipes and numbers, then you can easily use split() to get what you want. or you can pass multiple delimiters to split (in form of regex) and this should work:
String[] splited = yourString.split("[\\|\\s]+");
and the regex:
import java.util.regex.*;
Pattern pattern = Pattern.compile("\\d+(?=([\\|\\s\\r\\n]))");
Matcher matcher = pattern.matcher(yourString);
while (matcher.find()) {
System.out.println(matcher.group());
}
The pipe symbol is special in a regexp (it marks alternatives), you need to escape it. Depending on the java version you are using this could well explain your unpredictable results.
class t {
public static void main(String[]_)
{
String temp = "0|0";
String[] splitString = temp.split("\\|");
for (int i=0; i<splitString.length; i++)
System.out.println("splitString["+i+"] is " + splitString[i]);
}
}
outputs
splitString[0] is 0
splitString[1] is 0
Note that one backslash is the regexp escape character, but because a backslash is also the escape character in java source you need two of them to push the backslash into the regexp.
You can do replace white space for pipes and split it.
String test = "0|0 10|15 30|55";
test = test.replace(" ", "|");
String[] result = test.split("|");
Hope this helps for you..
You can use StringTokenizer.
String test = "0|0";
StringTokenizer st = new StringTokenizer(test);
int firstNumber = Integer.parseInt(st.nextToken()); //will parse out the first number
int secondNumber = Integer.parseInt(st.nextToken()); //will parse out the second number
Of course you can always nest this inside of a while loop if you have multiple strings.
Also, you need to import java.util.* for this to work.
The pipe ('|') is a special character in regular expressions. It needs to be "escaped" with a '\' character if you want to use it as a regular character, unfortunately '\' is a special character in Java so you need to do a kind of double escape maneuver e.g.
String temp = "0|0";
String[] splitStrings = temp.split("\\|");
The Guava library has a nice class Splitter which is a much more convenient alternative to String.split(). The advantages are that you can choose to split the string on specific characters (like '|'), or on specific strings, or with regexps, and you can choose what to do with the resulting parts (trim them, throw ayway empty parts etc.).
For example you can call
Iterable<String> parts = Spliter.on('|').trimResults().omitEmptyStrings().split("0|0")
This should work for you:
([0-9]+)
Considering a scenario where in we have read a line from csv or xls file in the form of string and need to separate the columns in array of string depending on delimiters.
Below is the code snippet to achieve this problem..
{ ...
....
String line = new BufferedReader(new FileReader("your file"));
String[] splittedString = StringSplitToArray(stringLine,"\"");
...
....
}
public static String[] StringSplitToArray(String stringToSplit, String delimiter)
{
StringBuffer token = new StringBuffer();
Vector tokens = new Vector();
char[] chars = stringToSplit.toCharArray();
for (int i=0; i 0) {
tokens.addElement(token.toString());
token.setLength(0);
i++;
}
} else {
token.append(chars[i]);
}
}
if (token.length() > 0) {
tokens.addElement(token.toString());
}
// convert the vector into an array
String[] preparedArray = new String[tokens.size()];
for (int i=0; i < preparedArray.length; i++) {
preparedArray[i] = (String)tokens.elementAt(i);
}
return preparedArray;
}
Above code snippet contains method call to StringSplitToArray where in the method converts the stringline into string array splitting the line depending on the delimiter specified or passed to the method. Delimiter can be comma separator(,) or double code(").
For more on this, follow this link : http://scrapillars.blogspot.in
I am having a group of strings in Arraylist.
I want to remove all the strings with only numbers
and also strings like this : (0.75%),$1.5 ..basically everything that does not contain the characters.
2) I want to remove all special characters in the string before i write to the console.
"God should be printed God.
"Including should be printed: quoteIncluding
'find should be find
Java boasts a very nice Pattern class that makes use of regular expressions. You should definitely read up on that. A good reference guide is here.
I was going to post a coding solution for you, but styfle beat me to it! The only thing I was going to do different here was within the for loop, I would have used the Pattern and Matcher class, as such:
for(int i = 0; i < myArray.size(); i++){
Pattern p = Pattern.compile("[a-z][A-Z]");
Matcher m = p.matcher(myArray.get(i));
boolean match = m.matches();
//more code to get the string you want
}
But that too bulky. styfle's solution is succinct and easy.
When you say "characters," I'm assuming you mean only "a through z" and "A through Z." You probably want to use Regular Expressions (Regex) as D1e mentioned in a comment. Here is an example using the replaceAll method.
import java.util.ArrayList;
public class Test {
public static void main(String[] args) {
ArrayList<String> list = new ArrayList<String>(5);
list.add("\"God");
list.add(""Including");
list.add("'find");
list.add("24No3Numbers97");
list.add("w0or5*d;");
for (String s : list) {
s = s.replaceAll("[^a-zA-Z]",""); //use whatever regex you wish
System.out.println(s);
}
}
}
The output of this code is as follows:
God
quotIncluding
find
NoNumbers
word
The replaceAll method uses a regex pattern and replaces all the matches with the second parameter (in this case, the empty string).
how would you do this:
I have a string and some regexes. Then I iterate over the string and in every iteration I need to know if the part (string index 0 to string currently iterated index) of that string is possible full match of one or more given regexes in next iterations.
Thank you for help.
What about a code like this:
// all of *greedy* regexs into a list
List<String> regex = new ArrayList<String>();
// here is my text
String mytext = "...";
String tmp = null;
// iterate over letters of my text
for (int i = 0; i < mytext.length(); i++) {
// substring from 0. position till i. index
tmp = mytext.substring(0, i);
// append regex on sub text
for (String reg : regex ) {
Pattern p = Pattern.compile(reg);
Matcher m = p.matcher(tmp);
// if found, do smt
if (m.find() ) { bingo.. do smt! }
}
}
You could use Matcher.lookingAt() to try to match as much as possible from a given input, but not requiring the whole input to match (.matches() would require the full input to match and .find() would not require the match to start at the beginning).
I don't believe the Java regular expression API provides such "incremental" or "step-by-step" search.
What you could do however, is to formulate your expression using reluctant quantifiers.
[...] The reluctant quantifiers, however, take the opposite approach: They start at the beginning of the input string, then reluctantly eat one character at a time looking for a match. The last thing they try is the entire input string. [...]
If this isn't viable in your case, you could use the Matcher.setRegion method to incrementally increase the region used by the matcher.
So I've been searching for alternatives to Java's standart RegEx library and found one that does the job well - JRegex
I am not a beginner to regular expressions, but their use in perl seems a bit different than in Java.
Anyways, I basically have a dictionary of shorthand words and their definitions. I want to iterate over words in the dictionary and replace them with their meanings. what is the best way to do this in JAVA?
I have seen String.replaceAll(), String.replace(), as well as the Pattern/Matcher classes. I wish to do a case insensitive replacement along the lines of:
word =~ s/\s?\Q$short_word\E\s?/ \Q$short_def\E /sig
While I am at it, do you think that it is best to extract all the words from the string and then apply my dictionary or just apply the dictionary to the string? I know that I need to be careful, because the shorthand words could match parts of other shorthand meanings.
Hopefully this all makes sense.
Thanks.
Clarification:
Dictionary is something like:
lol:laugh out loud, rofl:rolling on the floor laughing, ll:like lemons
string is:
lol, i am rofl
replaced text:
laugh out loud, i am rolling on the floor laughing
notice how the ll wasnt added anywhere
The danger is false positives inside of normal words. "fell" != "felikes lemons"
One way is to split the words on whitespace (do multiple spaces need to be conserved?) then loop over the List performing the 'if contains() { replace } else { output original } idea above.
My output class would be a StringBuffer
StringBuffer outputBuffer = new StringBuffer();
for(String s: split(inputText)) {
outputBuffer.append( dictionary.contains(s) ? dictionary.get(s) : s);
}
Make your split method smart enough to return word delimiters also:
split("now is the time") -> now,<space>,is,<space>,the,<space><space>,time
Then you don't have to worry about conserving white space - the loop above will just append anything that isn't a dictionary word to the StringBuffer.
Here's a recent SO thread on retaining delimiters when regexing.
If you insist on using regex, this would work (taking Zoltan Balazs' dictionary map approach):
Map<String, String> substitutions = loadDictionaryFromSomewhere();
int lengthOfShortestKeyInMap = 3; //Calculate
int lengthOfLongestKeyInMap = 3; //Calculate
StringBuffer output = new StringBuffer(input.length());
Pattern pattern = Pattern.compile("\\b(\\w{" + lengthOfShortestKeyInMap + "," + lengthOfLongestKeyInMap + "})\\b");
Matcher matcher = pattern.matcher(input);
while (matcher.find()) {
String candidate = matcher.group(1);
String substitute = substitutions.get(candidate);
if (substitute == null)
substitute = candidate; // no match, use original
matcher.appendReplacement(output, Matcher.quoteReplacement(substitute));
}
matcher.appendTail(output);
// output now contains the text with substituted words
If you plan to process many inputs, pre-compiling the pattern is more efficient than using String.split(), which compiles a new Pattern each call.
(edit) Compiling all of the keys into a single pattern yields a more efficient approach, like so:
Pattern pattern = Pattern.compile("\\b(lol|rtfm|rofl|wtf)\\b");
// rest of the method unchanged, don't need the shortest/longest key stuff
This allows the regex engine to skip over any words that happen to be short enough but aren't in the list, saving you a lot of map accesses.
The first thing, that comes into my mind is this:
...
// eg: lol -> laugh out loud
Map<String, String> dictionatry;
ArrayList<String> originalText;
ArrayList<String> replacedText;
for(String string : originalText) {
if(dictionary.contains(string)) {
replacedText.add(dictionary.get(string));
} else {
replacedText.add(string);
}
...
Or you could use a StringBuffer instead of the replacedText.