I have a string in java, of uncertain length, and I need to take the first 3 and last 3 characters and put them into new strings. Is there a simple way to do this?
Funny, all solutions are buggy (update: except the one with the regex) and may result in StringIndexOutOfBoundsException when the input string's length is less then 3 (the question explicitly says the length is uncertain). Assuming that str is not null, the proper way would be:
String first = str.substring(0, Math.min(str.length(), 3));
String second = str.substring(Math.max(0, str.length() - 3), str.length());
You could use the substring method:
String text = "Hello world!";
String newText = text.substring(0, 3) + text.substring(text.length-3);
This will take "Hello world!" and create a new string which is "Helld!".
If you are looking for a method that you can use:
String trimThreeCharacters(text){
return text.substring(0,3) + text.substring(text.length-3);
}
str.substring(0, 3) + str.substring(str.length - 3)
EDIT:
This code is not safe. I leave it for you to check whether string is not too short.
You can also use regular expressions:
Pattern p = Pattern.compile("^(.{3}).*(.{3})$");
Matcher m = p.matcher(str);
if (m.find()) {
String s1 = m.group(1);
String s2 = m.group(2);
}
Refer to documentation
public class Substring {
public static void main(String[] args) {
String input = "very long string, with random content";
System.out.println(input.substring(0, 3));
int length = input.length();
System.out.println(input.substring(length - 3));
}
}
Result
ver
ent
Another way of doing this
public class MyString
{
private String value;
public MyString(String p_value)
{
value = p_value;
}
public String getFirstThree()
{
return value.substring(0, 3);
}
public String getLastThree()
{
return value.substring(value.length() - 3);
}
public String getNewString()
{
return getFirstThree() + getLastThree();
}
public static void main(String[] args)
{
MyString example = new MyString("hello world");
String newString = example.getNewString();
System.out.println(newString);
}
}
new_string = old_string.substring(0,3) +
old_string.substring(old_string.lenght() - 3)
As milan already said, substring is the way to go here. You can see some examples of use here.
String FullName = "Cande Nauer";
String FirstNameChars = "";
FirstNameChars = FullName.substring( 0, 3 );
In this example, FirstNameChars will be "Can". To get the last three characters you will have to obtain the length og the string first.
Related
This post is an update to this one : get specific character in a string with regex and remove unused zero
In the first place, i wanted to remove with an regular expression the unused zero in the last match.
I found that the regular expression is a bit overkill for what i need.
Here is what i would like now,
I would like to use split() method
to get from this :
String myString = "2020-LI50532-3329-00100"
this :
String data1 = "2020"
String data2 = "LI50532"
String data3 = "3329"
String data4 = "00100"
So then i can remove from the LAST data the unused Zero
to convert "00100" in "100"
And then concatenate all the data to get this
"2020-LI50532-3329-100"
Im not familiar with the split method, if anyone can enlight me about this ^^
You can use substring method to get rid of the leading zeros...
String myString = "2020-LI50532-3329-00100";
String[] data = myString.split("-");
data[3] = data[3].substring(2);
StringBuilder sb = new StringBuilder();
sb.append(data[0] + "-" + data[1] + "-" + data[2] + "-" + data[3]);
String result = sb.toString();
System.out.println(result);
Assuming that we want to remove the leading zeroes of ONLY the last block, maybe we can:
Extract the last block
Convert it to Integer and back to String to remove leading zeroes
Replace the last block with the String obtained in above step
Something like this:
public String removeLeadingZeroesFromLastBlock(String text) {
int indexOfLastDelimiter = text.lastIndexOf('-');
if (indexOfLastDelimiter >= 0) {
String lastBlock = text.substring(indexOfLastDelimiter + 1);
String lastBlockWithoutLeadingZeroes = String.valueOf(Integer.valueOf(lastBlock)); // will throw exception if last block is not an int
return text.substring(0, indexOfLastDelimiter + 1).concat(lastBlockWithoutLeadingZeroes);
}
return text;
}
Solution using regex:
public class Main {
public static void main(String[] args) {
// Test
System.out.println(parse("2020-LI50532-3329-00100"));
System.out.println(parse("2020-LI50532-3329-00001"));
System.out.println(parse("2020-LI50532-03329-00100"));
System.out.println(parse("2020-LI50532-03329-00001"));
}
static String parse(String str) {
return str.replaceAll("0+(?=[1-9]\\d*$)", "");
}
}
Output:
2020-LI50532-3329-100
2020-LI50532-3329-1
2020-LI50532-03329-100
2020-LI50532-03329-1
Explanation of the regex:
One or more zeros followed by a non-zero digit which can be optionally followed by any digit(s) until the end of the string (specified by $).
Solution without using regex:
You can do it also by using Integer.parseInt which can parse a string like 00100 into 100.
public class Main {
public static void main(String[] args) {
// Test
System.out.println(parse("2020-LI50532-3329-00100"));
System.out.println(parse("2020-LI50532-3329-00001"));
System.out.println(parse("2020-LI50532-03329-00100"));
System.out.println(parse("2020-LI50532-03329-00001"));
}
static String parse(String str) {
String[] parts = str.split("-");
try {
parts[parts.length - 1] = String.valueOf(Integer.parseInt(parts[parts.length - 1]));
} catch (NumberFormatException e) {
// Do nothing
}
return String.join("-", parts);
}
}
Output:
2020-LI50532-3329-100
2020-LI50532-3329-1
2020-LI50532-03329-100
2020-LI50532-03329-1
you can convert the last string portion to integer type like below for removing unused zeros:
String myString = "2020-LI50532-3329-00100";
String[] data = myString.split("-");
data[3] = data[3].substring(2);
StringBuilder sb = new StringBuilder();
sb.append(data[0] + "-" + data[1] + "-" + data[2] + "-" + Integer.parseInt(data[3]));
String result = sb.toString();
System.out.println(result);
You should avoid String manipulation where possible and rely on existing types in the Java language. One such type is the Integer. It looks like your code consists of 4 parts - Year (Integer) - String - Integer - Integer.
So to properly validate it I would use the following code:
Scanner scan = new Scanner("2020-LI50532-3329-00100");
scan.useDelimiter("-");
Integer firstPart = scan.nextInt();
String secondPart = scan.next();
Integer thirdPart = scan.nextInt();
Integer fourthPart = scan.nextInt();
Or alternatively something like:
String str = "00100";
int num = Integer.parseInt(str);
System.out.println(num);
If you want to reconstruct your original value, you should probably use a NumberFormat to add the missing 0s.
The main points are:
Always try to reuse existing code and tools available in your language
Always try to use available types (LocalDate, Integer, Long)
Create your own types (classes) and use the expressiveness of the Object Oriented language
public class Test {
public static void main(String[] args) {
System.out.println(trimLeadingZeroesFromLastPart("2020-LI50532-03329-00100"));
}
private static String trimLeadingZeroesFromLastPart(String input) {
String delem = "-";
String result = "";
if (input != null && !input.isEmpty()) {
String[] data = input.split(delem);
StringBuilder tempStrBldr = new StringBuilder();
for (int idx = 0; idx < data.length; idx++) {
if (idx == data.length - 1) {
tempStrBldr.append(trimLeadingZeroes(data[idx]));
} else {
tempStrBldr.append(data[idx]);
}
tempStrBldr.append(delem);
}
result = tempStrBldr.substring(0, tempStrBldr.length() - 1);
}
return result;
}
private static String trimLeadingZeroes(String input) {
int idx;
for (idx = 0; idx < input.length() - 1; idx++) {
if (input.charAt(idx) != '0') {
break;
}
}
return input.substring(idx);
}
}
Output:
2020-LI50532-3329-100
I have a string,
String s = "test string (67)";
I want to get the no 67 which is the string between ( and ).
Can anyone please tell me how to do this?
There's probably a really neat RegExp, but I'm noob in that area, so instead...
String s = "test string (67)";
s = s.substring(s.indexOf("(") + 1);
s = s.substring(0, s.indexOf(")"));
System.out.println(s);
A very useful solution to this issue which doesn't require from you to do the indexOf is using Apache Commons libraries.
StringUtils.substringBetween(s, "(", ")");
This method will allow you even handle even if there multiple occurrences of the closing string which wont be easy by looking for indexOf closing string.
You can download this library from here:
https://mvnrepository.com/artifact/org.apache.commons/commons-lang3/3.4
Try it like this
String s="test string(67)";
String requiredString = s.substring(s.indexOf("(") + 1, s.indexOf(")"));
The method's signature for substring is:
s.substring(int start, int end);
By using regular expression :
String s = "test string (67)";
Pattern p = Pattern.compile("\\(.*?\\)");
Matcher m = p.matcher(s);
if(m.find())
System.out.println(m.group().subSequence(1, m.group().length()-1));
Java supports Regular Expressions, but they're kind of cumbersome if you actually want to use them to extract matches. I think the easiest way to get at the string you want in your example is to just use the Regular Expression support in the String class's replaceAll method:
String x = "test string (67)".replaceAll(".*\\(|\\).*", "");
// x is now the String "67"
This simply deletes everything up-to-and-including the first (, and the same for the ) and everything thereafter. This just leaves the stuff between the parenthesis.
However, the result of this is still a String. If you want an integer result instead then you need to do another conversion:
int n = Integer.parseInt(x);
// n is now the integer 67
In a single line, I suggest:
String input = "test string (67)";
input = input.subString(input.indexOf("(")+1, input.lastIndexOf(")"));
System.out.println(input);`
You could use apache common library's StringUtils to do this.
import org.apache.commons.lang3.StringUtils;
...
String s = "test string (67)";
s = StringUtils.substringBetween(s, "(", ")");
....
Test String test string (67) from which you need to get the String which is nested in-between two Strings.
String str = "test string (67) and (77)", open = "(", close = ")";
Listed some possible ways: Simple Generic Solution:
String subStr = str.substring(str.indexOf( open ) + 1, str.indexOf( close ));
System.out.format("String[%s] Parsed IntValue[%d]\n", subStr, Integer.parseInt( subStr ));
Apache Software Foundation commons.lang3.
StringUtils class substringBetween() function gets the String that is nested in between two Strings. Only the first match is returned.
String substringBetween = StringUtils.substringBetween(subStr, open, close);
System.out.println("Commons Lang3 : "+ substringBetween);
Replaces the given String, with the String which is nested in between two Strings. #395
Pattern with Regular-Expressions: (\()(.*?)(\)).*
The Dot Matches (Almost) Any Character
.? = .{0,1}, .* = .{0,}, .+ = .{1,}
String patternMatch = patternMatch(generateRegex(open, close), str);
System.out.println("Regular expression Value : "+ patternMatch);
Regular-Expression with the utility class RegexUtils and some functions.
Pattern.DOTALL: Matches any character, including a line terminator.
Pattern.MULTILINE: Matches entire String from the start^ till end$ of the input sequence.
public static String generateRegex(String open, String close) {
return "(" + RegexUtils.escapeQuotes(open) + ")(.*?)(" + RegexUtils.escapeQuotes(close) + ").*";
}
public static String patternMatch(String regex, CharSequence string) {
final Pattern pattern = Pattern.compile(regex, Pattern.DOTALL);
final Matcher matcher = pattern .matcher(string);
String returnGroupValue = null;
if (matcher.find()) { // while() { Pattern.MULTILINE }
System.out.println("Full match: " + matcher.group(0));
System.out.format("Character Index [Start:End]«[%d:%d]\n",matcher.start(),matcher.end());
for (int i = 1; i <= matcher.groupCount(); i++) {
System.out.println("Group " + i + ": " + matcher.group(i));
if( i == 2 ) returnGroupValue = matcher.group( 2 );
}
}
return returnGroupValue;
}
String s = "test string (67)";
int start = 0; // '(' position in string
int end = 0; // ')' position in string
for(int i = 0; i < s.length(); i++) {
if(s.charAt(i) == '(') // Looking for '(' position in string
start = i;
else if(s.charAt(i) == ')') // Looking for ')' position in string
end = i;
}
String number = s.substring(start+1, end); // you take value between start and end
String result = s.substring(s.indexOf("(") + 1, s.indexOf(")"));
public String getStringBetweenTwoChars(String input, String startChar, String endChar) {
try {
int start = input.indexOf(startChar);
if (start != -1) {
int end = input.indexOf(endChar, start + startChar.length());
if (end != -1) {
return input.substring(start + startChar.length(), end);
}
}
} catch (Exception e) {
e.printStackTrace();
}
return input; // return null; || return "" ;
}
Usage :
String input = "test string (67)";
String startChar = "(";
String endChar = ")";
String output = getStringBetweenTwoChars(input, startChar, endChar);
System.out.println(output);
// Output: "67"
Another way of doing using split method
public static void main(String[] args) {
String s = "test string (67)";
String[] ss;
ss= s.split("\\(");
ss = ss[1].split("\\)");
System.out.println(ss[0]);
}
Use Pattern and Matcher
public class Chk {
public static void main(String[] args) {
String s = "test string (67)";
ArrayList<String> arL = new ArrayList<String>();
ArrayList<String> inL = new ArrayList<String>();
Pattern pat = Pattern.compile("\\(\\w+\\)");
Matcher mat = pat.matcher(s);
while (mat.find()) {
arL.add(mat.group());
System.out.println(mat.group());
}
for (String sx : arL) {
Pattern p = Pattern.compile("(\\w+)");
Matcher m = p.matcher(sx);
while (m.find()) {
inL.add(m.group());
System.out.println(m.group());
}
}
System.out.println(inL);
}
}
The "generic" way of doing this is to parse the string from the start, throwing away all the characters before the first bracket, recording the characters after the first bracket, and throwing away the characters after the second bracket.
I'm sure there's a regex library or something to do it though.
The least generic way I found to do this with Regex and Pattern / Matcher classes:
String text = "test string (67)";
String START = "\\("; // A literal "(" character in regex
String END = "\\)"; // A literal ")" character in regex
// Captures the word(s) between the above two character(s)
String pattern = START + "(\w+)" + END;
Pattern pattern = Pattern.compile(pattern);
Matcher matcher = pattern.matcher(text);
while(matcher.find()) {
System.out.println(matcher.group()
.replace(START, "").replace(END, ""));
}
This may help for more complex regex problems where you want to get the text between two set of characters.
The other possible solution is to use lastIndexOf where it will look for character or String from backward.
In my scenario, I had following String and I had to extract <<UserName>>
1QAJK-WKJSH_MyApplication_Extract_<<UserName>>.arc
So, indexOf and StringUtils.substringBetween was not helpful as they start looking for character from beginning.
So, I used lastIndexOf
String str = "1QAJK-WKJSH_MyApplication_Extract_<<UserName>>.arc";
String userName = str.substring(str.lastIndexOf("_") + 1, str.lastIndexOf("."));
And, it gives me
<<UserName>>
String s = "test string (67)";
System.out.println(s.substring(s.indexOf("(")+1,s.indexOf(")")));
Something like this:
public static String innerSubString(String txt, char prefix, char suffix) {
if(txt != null && txt.length() > 1) {
int start = 0, end = 0;
char token;
for(int i = 0; i < txt.length(); i++) {
token = txt.charAt(i);
if(token == prefix)
start = i;
else if(token == suffix)
end = i;
}
if(start + 1 < end)
return txt.substring(start+1, end);
}
return null;
}
This is a simple use \D+ regex and job done.
This select all chars except digits, no need to complicate
/\D+/
it will return original string if no match regex
var iAm67 = "test string (67)".replaceFirst("test string \\((.*)\\)", "$1");
add matches to the code
String str = "test string (67)";
String regx = "test string \\((.*)\\)";
if (str.matches(regx)) {
var iAm67 = str.replaceFirst(regx, "$1");
}
---EDIT---
i use https://www.freeformatter.com/java-regex-tester.html#ad-output to test regex.
turn out it's better to add ? after * for less match. something like this:
String str = "test string (67)(69)";
String regx1 = "test string \\((.*)\\).*";
String regx2 = "test string \\((.*?)\\).*";
String ans1 = str.replaceFirst(regx1, "$1");
String ans2 = str.replaceFirst(regx2, "$1");
System.out.println("ans1:"+ans1+"\nans2:"+ans2);
// ans1:67)(69
// ans2:67
String s = "(69)";
System.out.println(s.substring(s.lastIndexOf('(')+1,s.lastIndexOf(')')));
Little extension to top (MadProgrammer) answer
public static String getTextBetween(final String wholeString, final String str1, String str2){
String s = wholeString.substring(wholeString.indexOf(str1) + str1.length());
s = s.substring(0, s.indexOf(str2));
return s;
}
So say I have a string called x that = "Hello world". I want to somehow make it so that it will flip those two words and instead display "world Hello". I am not very good with loops or arrays and obviously am a beginner. Could I accomplish this somehow by splitting my string? If so, how? If not, how could I do this? Help would be appreciated, thanks!
1) split string into String array on space.
String myArray[] = x.split(" ");
2) Create new string with words in reverse order from array.
String newString = myArray[1] + " " + myArray[0];
Bonus points for using a StringBuilder instead of concatenation.
String abc = "Hello world";
String cba = abc.replace( "Hello world", "world Hello" );
abc = "This is a longer string. Hello world. My String";
cba = abc.replace( "Hello world", "world Hello" );
If you want, you can explode your string as well:
String[] pieces = abc.split(" ");
for( int i=0; i<pieces.length-1; ++i )
if( pieces[i]=="Hello" && pieces[i+1]=="world" ) swap(pieces[i], pieces[i+1]);
There are many other ways you can do it too. Be careful for capitalization. You can use .toUpperCase() in your if statements and then make your matching conditionals uppercase, but leave the results with their original capitalization, etc.
Here's the solution:
import java.util.*;
public class ReverseWords {
public String reverseWords(String phrase) {
List<String> wordList = Arrays.asList(phrase.split("[ ]"));
Collections.reverse(wordList);
StringBuilder sbReverseString = new StringBuilder();
for(String word: wordList) {
sbReverseString.append(word + " ");
}
return sbReverseString.substring(0, sbReverseString.length() - 1);
}
}
The above solution was coded by me, for Google Code Jam and is also blogged here: Reverse Words - GCJ 2010
Just use this method, call it and pass the string that you want to split out
static String reverseWords(String str) {
// Specifying the pattern to be searched
Pattern pattern = Pattern.compile("\\s");
// splitting String str with a pattern
// (i.e )splitting the string whenever their
// is whitespace and store in temp array.
String[] temp = pattern.split(str);
String result = "";
// Iterate over the temp array and store
// the string in reverse order.
for (int i = 0; i < temp.length; i++) {
if (i == temp.length - 1) {
result = temp[i] + result;
} else {
result = " " + temp[i] + result;
}
}
return result;
}
Depending on your exact requirements, you may want to split on other forms of whitespace (tabs, multiple spaces, etc.):
static Pattern p = Pattern.compile("(\\S+)(\\s+)(\\S+)");
public String flipWords(String in)
{
Matcher m = p.matcher(in);
if (m.matches()) {
// reverse the groups we found
return m.group(3) + m.group(2) + m.group(1);
} else {
return in;
}
}
If you want to get more complex see the docs for Pattern http://docs.oracle.com/javase/6/docs/api/java/util/regex/Pattern.html
Try something as follows:
String input = "how is this";
List<String> words = Arrays.asList(input.split(" "));
Collections.reverse(words);
String result = "";
for(String word : words) {
if(!result.isEmpty()) {
result += " ";
}
result += word;
}
System.out.println(result);
Output:
this is how
Too much?
private static final Pattern WORD = Pattern.compile("^(\\p{L}+)");
private static final Pattern NUMBER = Pattern.compile("^(\\p{N}+)");
private static final Pattern SPACE = Pattern.compile("^(\\p{Z}+)");
public static String reverseWords(final String text) {
final StringBuilder sb = new StringBuilder(text.length());
final Matcher wordMatcher = WORD.matcher(text);
final Matcher numberMatcher = NUMBER.matcher(text);
final Matcher spaceMatcher = SPACE.matcher(text);
int offset = 0;
while (offset < text.length()) {
wordMatcher.region(offset, text.length());
numberMatcher.region(offset, text.length());
spaceMatcher.region(offset, text.length());
if (wordMatcher.find()) {
final String word = wordMatcher.group();
sb.insert(0, reverseCamelCase(word));
offset = wordMatcher.end();
} else if (numberMatcher.find()) {
sb.insert(0, numberMatcher.group());
offset = numberMatcher.end();
} else if (spaceMatcher.find()) {
sb.insert(0, spaceMatcher.group(0));
offset = spaceMatcher.end();
} else {
sb.insert(0, text.charAt(offset++));
}
}
return sb.toString();
}
private static final Pattern CASE_REVERSAL = Pattern
.compile("(\\p{Lu})(\\p{Ll}*)(\\p{Ll})$");
private static String reverseCamelCase(final String word) {
final StringBuilder sb = new StringBuilder(word.length());
final Matcher caseReversalMatcher = CASE_REVERSAL.matcher(word);
int wordEndOffset = word.length();
while (wordEndOffset > 0 && caseReversalMatcher.find()) {
sb.insert(0, caseReversalMatcher.group(3).toUpperCase());
sb.insert(0, caseReversalMatcher.group(2));
sb.insert(0, caseReversalMatcher.group(1).toLowerCase());
wordEndOffset = caseReversalMatcher.start();
caseReversalMatcher.region(0, wordEndOffset);
}
sb.insert(0, word.substring(0, wordEndOffset));
return sb.toString();
}
I have a string and I need to replace the last 4 characters of the string with a "*" symbol. Can anyone please tell me how to do it.
A quick and easy method...
public static String replaceLastFour(String s) {
int length = s.length();
//Check whether or not the string contains at least four characters; if not, this method is useless
if (length < 4) return "Error: The provided string is not greater than four characters long.";
return s.substring(0, length - 4) + "****";
}
Now all you have to do is call replaceLastFour(String s) with a string as the argument, like so:
public class Test {
public static void main(String[] args) {
replaceLastFour("hi");
//"Error: The provided string is not greater than four characters long."
replaceLastFour("Welcome to StackOverflow!");
//"Welcome to StackOverf****"
}
public static String replaceLastFour(String s) {
int length = s.length();
if (length < 4) return "Error: The provided string is not greater than four characters long.";
return s.substring(0, length - 4) + "****";
}
}
The simplest is to use a regular expression:
String s = "abcdefg"
s = s.replaceFirst(".{4}$", "****"); => "abc****"
Maybe an example would help:
String hello = "Hello, World!";
hello = hello.substring(0, hello.length() - 4);
// hello == "Hello, Wo"
hello = hello + "****";
// hello == "Hello, Wo****"
public class Model {
public static void main(String[] args) {
String s="Hello world";
System.out.println(s.substring(0, s.length()-4)+"****");
}
}
You can use substring for this.
String str = "mystring";
str = str.substring(0,str.length()-4);
str = str + "****";
So substring takes two parameter.
substring(beginIndex, endIndex);
So, if you call a substring method in a string, It creates a new String that begins from beginIndex inclusive and endIndex exclusive. For example:
String str = "roller";
str = str.substring(0,4);
System.out.Println("str");
OUTPUT :
roll
so it starts from the beginIndex until the endIndex - 1.
If you want to know more about substring, visit http://docs.oracle.com/javase/1.4.2/docs/api/java/lang/String.html
Hope this helps.
Here is my solution for keeping only the first 3 original characters
/**
* #param s
* #return first 3 Characters of s, filled up with * to the Length of s, or s if shorter than 4 Char
*/
static String replaceLastChars(String s) {
if (StringUtils.isBlank(s) || s.length() < 4) {
return s;
}
return StringUtils.rightPad(s.substring(0, 3), s.length(), '*');
}
And the corresponding TestCase
#Test
public void testReplace() {
assertThat(replaceLastChars(null)).isNull();
assertThat(replaceLastChars("")).isEqualTo("");
assertThat(replaceLastChars("abc")).isEqualTo("abc");
assertThat(replaceLastChars("abcdfg")).isEqualTo("abc***");
}
Using Javascript slice will solve your problem easy as slice.... check this out.
var str = "12345678";
console.log(str.slice(0, -4) + "XXXX");
I'm trying to create a palindrome tester program for my AP Java class and I need to remove the white spaces in my code completely but it's not letting me do so.
import java.util.Scanner;
public class Palin{
public static boolean isPalindrome(String stringToTest) {
String workingCopy = removeJunk(stringToTest);
String reversedCopy = reverse(workingCopy);
return reversedCopy.equalsIgnoreCase(workingCopy);
}
public static String removeJunk(String string) {
int i, len = string.length();
StringBuffer dest = new StringBuffer(len);
char c;
for (i = (len - 1); i >= 0; i-=1) {
c = string.charAt(i);
if (Character.isLetterOrDigit(c))
{
dest.append(c);
}
}
return dest.toString();
}
public static String reverse(String string) {
StringBuffer sb = new StringBuffer(string);
return sb.reverse().toString();
}
public static void main(String[] args) {
System.out.print("Enter Palindrome: ");
Scanner sc = new Scanner(System.in);
String string = sc.next();
String str = string;
String space = "";
String result = str.replaceAll("\\W", space);
System.out.println(result);
System.out.println();
System.out.println("Testing palindrome:");
System.out.println(" " + string);
System.out.println();
if (isPalindrome(result)) {
System.out.println("It's a palindrome!");
} else {
System.out.println("Not a palindrome!");
}
System.out.println();
}
}
Any help would be greatly appreciated.
Seems like your code is fine except for the following. You are using
String string = sc.next();
which will not read the whole line of input, hence you will lose part of the text. I think you should use the following instead of that line.
String string = sc.nextLine();
If you just want to remove the beginning and ending whitespace, you can use the built in function trim(), e.g. " abcd ".trim() is "abcd"
If you want to remove it everywhere, you can use the replaceAll() method with the whitespace class as the parameter, e.g. " abcd ".replaceAll("\W","").
Use a StringTokenizer to remove " "
StringTokenizer st = new StringTokenizer(string," ",false);
String t="";
while (st.hasMoreElements()) t += st.nextElement();
String result = t;
System.out.println(result);
I haven't actually tesed this, but have you considered the String.replaceAll(String regex, String replacement) method?
public static String removeJunk (String string) {
return string.replaceAll (" ", "");
}
Another thing to look out for is that while removing all non-digit/alpha characters removeJunk also reverses the string (it starts from the end and then appends one character at a time).
So after reversing it again (in reverse) you are left with the original and it will always claim that the given string is a palindrome.
You should use the String replace(char oldChar, char newChar) method.
Although the name suggests that only the first occurrence will be replaced, fact is that all occurrences will be replaced. The advantage of this method is that it won't use regular expressions, thus is more efficient.
So give a try to string.replace(' ', '');