“Java Scanner String Nextline po Nextint” Kod odpowiedzi

Java Scanner String Nextline po Nextint

//The problem is with the input.nextInt() method - it only reads the int value. So when you continue reading with input.nextLine() you receive the "\n" Enter key. So to skip this you have to add the input.nextLine(). Hope this should be clear now.

//Try it like that:

System.out.print("Insert a number: ");
int number = input.nextInt();
input.nextLine(); // This line you have to add (It consumes the \n character)
System.out.print("Text1: ");
String text1 = input.nextLine();
System.out.print("Text2: ");
String text2 = input.nextLine();

DevPedrada

Sc.Nextline pomija

int option = input.nextInt();
input.nextLine();  // Consume newline left-over
String str1 = input.nextLine();

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