I am wondering how to count the number of times that a letter entered by a user appears in a string that is also entered by a user. I have to use Loops and if/else statements. I think I'm on the right track, but I get caught up when compiling (using BlueJ), with the error message "cannot find symbol - variable position". Any help is greatly appreciated, thanks.
String input;
String sentence;
String letter;
int times=0;
int position;
Scanner kb = new Scanner(System.in);
System.out.print("Please enter a string: ");
input = kb.nextLine();
sentence = input.toLowerCase();
System.out.print("Thank you.\nPlease enter the character you wish to be counted: ");
letter = kb.next();
for (position=0; position<=sentence.length(); position++) {
if (sentence.charAt(position) == letter) {
times++;
}
}
System.out.print("There are "+times+" ocurrances of the letter "+letter
+" in the string "+sentence);`
First, you have a typo in your if statement:
sentence.charAt(posotion)
should be
sentence.charAt(position)
Then, you are assigning rather than testing equality:
if (sentence.charAt(position) = letter) {
should be
if (sentence.charAt(position) == letter) {
Next, you are comparing a char with a string in that if statement. There are several ways to solve this, one way is (assuming letter has at least one character):
if (sentence.charAt(position) == letter.charAt(0)) {
And lastly, you probably don't what to check past the end of the string so:
for (position=0; position<=sentence.length(); position++) {
should be
for (position=0; position<sentence.length(); position++) {
Related
I want to print a letter instead of the index position using the indexOf(); method.
The requirement is that: Inputs a second string from the user. Outputs the character after the first instance of the string in the phrase. If the string is not in the phrase, outputs a statement to that effect. For example, the input is 3, upside down, d. The output should be "e", I got part of it working where it inputs an integer rather than a string of that particular position. How would I output a string?
else if (option == 3){
int first = 0;
String letter = keyboard.next();
first = phrase.indexOf(letter,1);
if (first == -1){
System.out.print("'"+letter+"' is not in '"+phrase+"'");
}
else {
System.out.print(first + 1);
}
}
String.charAt(index)
You can access a single character, or a letter, by caling método charAt() from String class
Example
public static void main(String[] args) {
Scanner keyboard = new Scanner(System.in);
String phrase = keyboard.nextLine();
char firstLetter = phrase.charAt(0);
System.out.println("First Letter : " + firstLetter);
}
So, running this code, assuming the input is StackOverFlow, the output will be S
In your code I think doing the follow will work:
Your Code
String letter = keyboard.next();
first = letter.charAt(0);
That might help!
Based on those comments
So, what you want is print the first letter based on a letter the user
has input? For example, for the word Keyboard, and user inputs letter
'a' the first letter might be 'R'. Is that it? – Guerino Rodella
Yes, I have to combine both the indexOf(): method and the charAt():
method – Hussain123
The idea is get next letter based on user input letter.
I'm not sure I wunderstood it, but this is my shot
public static void main(String[] args) {
Scanner keyboard = new Scanner(System.in);
String phrase = "keyboard";
String userInput = keyboard.nextLine();
boolean notContainsInputValue = !phrase.contains(userInput);
if (notContainsInputValue) {
System.out.println("The input value doesn't exists");
return;
}
char firstLetter = userInput.charAt(0);
int desiredIndex = 0;
for (int i = 0; i < phrase.length(); i++) {
if (phrase.charAt(i) == firstLetter) {
desiredIndex = i;
break;
}
}
System.out.println("The index for your input letter is: " + desiredIndex);
System.out.println("Next letter based on input value is: " + phrase.charAt(desiredIndex + 1));
}
The Output
The index for your input letter is: 5
Next letter based on input value is: r
Hope that helps you.
What can I do to modify this, is there any java function for that?
What needs to be done so that it only accepts characters and returns an error message for other data types?
import java.util.*;
public class problem5
{
public static void main(String[] args)
{
Scanner in = new Scanner(System.in);
System.out.print("Enter a letter from the alphabet: ");
char letter = in.next(".").charAt(0);
char vowels[] = {'A','E','I','O','U','a','e','i','o','u'};
int vowelcount = 0;
for (int i = 0; i < 10; i++)
{
if (vowels[i] == letter)
{
vowelcount++;
}
}
if (vowelcount > 0)
{
System.out.println("You entered a vowel.");
}
else
{
System.out.println("You entered a consonant.");
}
}
}
I need to reject input that has more than 1 char – Nico Dela Cruz
You just need to check the length of your input
String input = in.next(".");
if(input.length == 1){
char letter = input.charAt(0);
...
}
Add an else if you want to add an error message of some sort.
To check the input to only accept letter, you have Character.isLetter(char) to check every "letter" in UNICODE for you.
If you want to only accept a range of a-z and/or A-Z, you can do it yourself with an if condition or using regex.
Wrap your loop in a statement such as:
if (Character.isLetter(letter)){
and put and else clause at the end for your error
Edit:
OP has changed their question slightly, so you can either:
-Accept only the first character entered:
char letter = in.next().trim().charAt(0);
-Or as AxelH said above, only proceed if user enters one char:
if(input.length == 1){
char letter = input.charAt(0);
So, I am very new at coding but have a college assignment to create a Word Manipulator. I am supposed to get a string and an INT from the user and invert every Nth word, according to the int input.
I am following steps and am stuck with this error at line 38 (the start of my last FOR LOOP). The compiler is giving me an Not an Statement Error in this line but I cant see where I went wrong.
Could someone gimme a light, please?
ps: I am not allowed to use Token or inverse().
import java.util.Scanner;
public class assignment3 {
public static void main(String[] args) {
// BOTH INPUTS WERE TAKEN
Scanner input = new Scanner (System.in);
String stringInput;
int intInput;
System.out.println("Please enter a sentence");
stringInput = input.nextLine();
System.out.println("Please enter an integer from 1 to 10. \n We will invert every word in that position for you!");
intInput = input.nextInt();
int counter = 1;
// ALL CHARS NOW ARE LOWERCASE
String lowerCaseVersion = stringInput.toLowerCase();
// SPLIT THE STRING INTO ARRAY OF WORDS
String [] arrayOfWords = null;
String delimiter = " ";
arrayOfWords = lowerCaseVersion.split(delimiter);
for(int i=0; i< arrayOfWords.length; i++){
System.out.println(arrayOfWords[i]);
// THIS RETURNS AN ARRAY WITH ALL THE WORDS FROM THE INPUT
}
// IF THE INTEGER INPUT IS BIGGER THAN THE STRING.LENGTH, OUTPUT A MESSAGE
// THIS PART IS WORKING BUT I MIGHT WANT TO PUT IT IN A LOOP AND ASK FOR INPUT AGAIN
if (intInput > arrayOfWords.length){
System.out.println("There are not enough words in your sentence!");
}
// NOW I NEED TO REVERSE EVERY NTH WORD BASED ON THE USER INPUT
//THIS IS WHERE THE ERROR OCCURS
for(int i=(intInput-1); i<arrayOfWords.length; (i+intInput)){
char invertedWord[] = new char[arrayOfWords.length()];
for(int i=0; i < arrayOfWords.length();i++){
ch[i]=arrayOfWords.charAt(i);
}
for(int i=s.length()-1;i>=0;i--){
System.out.print(invertedWord[i]);
}
}
}
}
(i+intInput) isn't a statement. That's like saying 12. Perhaps you mean i=i+intInput or i+=intInput which assigns a value to a variable
well, for one thing, i dont see "s" (from s.length()) initiated anywhere in your code.
My code here checks whether or not the word that the user inputs is a palindrome or not. It executes properly its just that if the user tries to loop it by pressing "1". The program ends. How do I fix this?
int answer =0;
String original, backwards = "";
Scanner input = new Scanner(System.in);
System.out.println("A palindrome is a word that is the same forwards as it is backwards. Enter a word to check if it is a palindrome or not.");
original = input.nextLine();
int length = original.length();
do {
for ( int i = length - 1; i >= 0; i-- )
backwards = backwards + original.charAt(i);
if (original.equals(backwards))
System.out.println("The entered phrase is a palindrome.");
else
System.out.println("The entered phrase is not a palindrome.");
}
while (answer ==1);
System.out.println("If you would like to check another word press 1. If you wish to exit, press 2.");
answer = input.nextInt();
if (answer ==1){
System.out.println("Enter another word");
}
else if (answer == 2){
System.out.println("Have a nice day");
}
}
}
Here is a sample output of the program:
A palindrome is a word that is the same forwards as it is backwards. Enter a word to check if it is a palindrome or not.
racecar
The entered phrase is a palindrome.
If you would like to check another word press 1. If you wish to exit, press 2.
1
Enter another word
Your loop finishes before the user gets to choose if he wants to enter 1 or 2. It is a do...while loop, so it ends at the while. So it executes only once - because as soon as a palindrome is checked, the next thing is to check whether the answer is 1. But the user has not entered either 1 or 2 at this point.
So you should move the } while ( answer == 1 ) part to the line after the closing of the if...else... that checks what the user answer was.
Also, if the answer was 1, you should ask for another input. The only place you ask for input is before the loop starts. If the user answered 1 you should run original = input.nextLine(); again. Be careful - you may need to run two input.nextLine(), as the scanner will think the rest of the line after the 1 or 2 is what you meant.
Your scanner is asking for nextLine, but you're asking for an int. nextLine means it will take what is typed in the nextLine as a string.
Simple fix is replace 1 and 2 with characters a and b.
Complicated way is to parse string into integer.
make the palindrome check as a method and then call the method if the user input is 1.
In your code , it does not do anything if the user inout is equal to 1.
i just used your scanner objects as it is. You can declare them in your class to use it in all the methods.
public void palindrome(String S){
int answer =0;
String original, backwards = "";
Scanner input = new Scanner(System.in);
System.out.println("A palindrome is a word that is the same forwards as it is backwards. Enter a word to check if it is a palindrome or not.");
original = input.nextLine();
int length = original.length();
do {
for ( int i = length - 1; i >= 0; i-- )
backwards = backwards + original.charAt(i);
if (original.equals(backwards))
System.out.println("The entered phrase is a palindrome.");
else
System.out.println("The entered phrase is not a palindrome.");
}
while (answer ==1);
System.out.println("If you would like to check another word press 1. If you wish to exit, press 2.");
int option= input.nextInt();
if (option==1){
System.out.println("Enter another word");
String word= input.readLine();
palindrome(word);
}
You need to put the check if user want to enter another work in the while loop. But in the mean time, be careful to reset all variables to their original value, so it might be best to set them in the while loop as well. Something like this:
import java.util.Scanner;
public class Palidrome {
public static void main(String[] args) {
int answer = 0;
Scanner input = new Scanner(System.in);
String original;
System.out
.println("A palindrome is a word that is the same forwards as it is backwards. Enter a word to check if it is a palindrome or not.");
while( true ) {
original = input.nextLine();
String backwards = "";
int length = original.length();
for (int i = length - 1; i >= 0; i--)
backwards = backwards + original.charAt(i);
if (original.equals(backwards))
System.out.println("The entered phrase " + original + " is a palindrome.");
else
System.out.println("The entered phrase " + original + " is not a palindrome.");
System.out.println("If you wish to exit, press 2");
answer = input.nextInt();
if(answer == 2) {
System.out.println("Have a nice day");
break;
}
input.nextLine();
System.out.println("Enter another word");
}
input.close();
}
}
A do while loop works the same way as a regular while loop, except the first conditional check is omitted. If the condition in your while was met, then execution of the code in the do block would be continued. However, the while condition is never met, can you see why? Even if this condition was met, that's not the code you wanted executed next. The code below while is not a part of the do-while loop. You need to move the while to come after both of your conditional blocks at the end. The Java docs on while loops should be a useful read.
I am having some trouble preventing the user from entering numbers with the scanner class. This is what I have:
package palindrome;
import java.util.Scanner;
public class Palindrome {
public static void main(String[] args) {
Scanner input = new Scanner(System.in);
String word;
String inverse = "";
System.out.println("Write a sentence or word: ");
while (!input.hasNext("[A-Za-z]+")) {
System.out.println("Not valid! Try again: ");
input.nextLine();
}
word = input.nextLine();
word = word.replaceAll("\\s+","");
word = word.toLowerCase();
int length = word.length();
length = length - 1;
for (int i = length; i >= 0; i--) {
inverse = inverse + word.charAt(i);
}
if (word.equals(inverse)) {
System.out.println("Is a palindrome.");
} else {
System.out.println("Is not a palindrome.");
}
}
}
Basically when I enter a word or sentence I want it to check if it has any numbers anywhere in the input, if it has then you need to enter another one until it doesn't. Here is an example of output:
Write a sentence or word:
--> 11
Not valid! Try again:
--> 1 test
Not valid! Try again:
--> test 1
Is not a palindrome.
As you can see it works for most cases, but when I enter a word FIRST and then a space followed by a number it evaluates it without the number. I am assuming this is happening because in the while loop is checking for only input.hasNext but it should be input.hasNextLine I believe to check the entire string. However I cannot have any arguments if I do that. Help much appreciated!
Change your regex from: [A-Za-z]+ to ^[A-Za-z]+$ in order to prevent numbers anywhere in the input-string