23

I am trying to print numbers from 1 to 100 without using loops, using C#. Any clues?

14
  • 4
    If this is for an assignment, what constructs have you been taught so far? This will help formulate answers.
    – JMD
    Nov 27, 2009 at 18:11
  • 5
    Have you got to recursion yet in the class or is this the first homework assignment?
    – The Matt
    Nov 27, 2009 at 18:14
  • 4
    Whew. This question was viewed 99 times when I found it. Glad I missed the corner case.
    – John
    Nov 27, 2009 at 18:23
  • 11
    Why has this been closed? This is a total valid & real question. Nov 27, 2009 at 18:36
  • 12
    stackoverflow.com/questions/2044033/… Are you two in the same class? If so, why do one want it in C# while the other in Java Jan 12, 2010 at 4:52

28 Answers 28

200

No loops, no conditionals, and no hardcoded literal output, aka "divide and conquer FTW" solution:

class P
{
    static int n;

    static void P1() { System.Console.WriteLine(++n); }

    static void P2() { P1(); P1(); }

    static void P4() { P2(); P2(); }

    static void P8() { P4(); P4(); }

    static void P16() { P8(); P8(); }

    static void P32() { P16(); P16(); }

    static void P64() { P32(); P32(); }

    static void Main() { P64(); P32(); P4(); }
}

Alternative approach:

using System;

class C
{
    static int n;

    static void P() { Console.WriteLine(++n); }

    static void X2(Action a) { a(); a(); }

    static void X5(Action a) { X2(a); X2(a); a(); }

    static void Main() { X2(() => X5(() => X2(() => X5(P)))); }
}
8
  • 3
    This is innovative, but I see it as valuable as writing down 100 WriteLine statements :) Jan 11, 2010 at 19:04
  • 1
    Clever, but then the next question will be how to print 1 to 101. How do you handle prime numbers?
    – Ozan
    Jan 12, 2010 at 6:07
  • 4
    @Ozan: 1 to 101 is { P64(); P32(); P4(); P1(); }, 1 to 7 is { P4(); P2(); P1(); }. Jan 12, 2010 at 11:03
  • I love the power of two ladder approach for this. Very clever. I also like the lambda recursion model. But you should make your answer complete by also showing a self-attenuating closure.
    – LBushkin
    Jan 12, 2010 at 16:27
  • @LBushkin: you can really think of the power of two ladder as or-ing together bit flags. 100 = 0b1100100, 64 = 0b1000000, 32 = 0b0100000, and 4 = 0b0000100, so 64 | 32 | 4 = 100. Coolness!
    – Juliet
    Jan 12, 2010 at 20:41
66
Console.Out.WriteLine('1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,18,19,20,21,22,23,24,25,26,27,28,29,30,31,32,33,34,35,36,37,38,39,40,41,42,43,44,45,46,47,48,49,50,51,52,53,54,55,56,57,58,59,60,61,62,63,64,65,66,67,68,69,70,71,72,73,74,75,76,77,78,79,80,81,82,83,84,85,86,87,88,89,90,91,92,93,94,95,96,97,98,99,100');
3
  • 65
    I'm sorry, this only prints 5 numbers, not all 100.
    – Adam Woś
    Jan 11, 2010 at 18:52
  • 7
    I hope that Adam was joking in his comment. Of course it only prints 5 numbers. It's just shorthand. Jan 12, 2010 at 19:50
  • Of course you wouldn't need to write the shorthand if you make a code to write the output with a for loop, then copy the full output into the answer here... Nov 8, 2017 at 23:51
61

Recursion maybe?

public static void PrintNext(i) {
    if (i <= 100) {
        Console.Write(i + " ");
        PrintNext(i + 1);
    }
}

public static void Main() {
    PrintNext(1);
}
9
  • 28
    Gratuitous "but first you have to understand recursion" comment.
    – Greg Beech
    Nov 27, 2009 at 18:19
  • 7
    Recursion generally isn't considered a loop, even though its behaving similar to a loop. Nov 27, 2009 at 22:15
  • Guess I need to read about Recursion. +1 for the help, thank you. Nov 27, 2009 at 22:21
  • 3
    A loop generally implies a mutable counter, this one doesn't have that (every invocation has its own "counter"). Nov 27, 2009 at 22:56
  • 2
    When I first started learning recursion I got a stack overflow in my brain.
    – Rich
    Jan 12, 2011 at 22:48
46

One more:

Console.WriteLine(
   String.Join(
      ", ", 
      Array.ConvertAll<int, string>(
         Enumerable.Range(1, 100).ToArray(), 
         i => i.ToString()
      )
   )
);
3
  • 1
    String.Join is a nice solution, indeed! How didn't it come to my mind immediately?
    – fviktor
    Nov 27, 2009 at 18:49
  • 7
    String.Join, Array.ConvertAll, Enumerable.Range and ToArray all use for/foreach constructs. You can't just encapsulate them and claim there is no looping! Jan 15, 2010 at 23:21
  • @Callum, there are no loop constructs in my C# code as requested. :) This answer is all about plausible deniability and how to make the printed output look prettier using String.Join. Jan 18, 2010 at 12:17
14
using static IronRuby.Ruby;

class Print1To100WithoutLoopsDemo
{
    static void Main() => 
      CreateEngine().Execute("(1..100).each {|i| System::Console.write_line i }");
}

Hey, why not?

5
  • 9
    The answer to all C# questions. Jan 12, 2010 at 0:05
  • 1
    Ruby's .each would be a loop, or?
    – gerrit
    May 14, 2012 at 12:37
  • @gerrit: The Ruby Language Specification doesn't say how to implement Range#each. It is perfectly possible to implement it with recursion, for example. Besides, if you really want to dig down into the implementation, then even using a for loop counts as "without loop", since it will eventually be compiled into GOTOs anyway. May 14, 2012 at 12:42
  • Hm, that makes the original question poorly defined then, or not?
    – gerrit
    May 14, 2012 at 15:00
  • @gerrit: As most homework questions tend to be. Depending on what exactly the teacher is trying to teach, they probably expect the students to either use (tail) recursion or GOTO to solve this assignment, but: both are isomorphic to loops, so, saying you can't use anything which smells like a loop kind of defeats the purpose of this exercise. May 14, 2012 at 17:40
12
Console.WriteLine('1');
Console.WriteLine('2');
...
Console.WriteLine('100');

...Or would you have accepted a recursive solution?

EDIT: or you could do this and use a variable:

int x = 1;
Console.WriteLine(x);
x+=1;
Console.WriteLine('2');
x+=1;
...
x+=1
Console.WriteLine('100');
4
  • +1 for the recursive idea. Even though it's a bit abusive of the stack, it would work and it's only an assignment, presumably.
    – JMD
    Nov 27, 2009 at 18:14
  • I haven't done C# in awhile, but couldn't you just just do Console.WriteLine( ++x ); instead of doing x += 1 before each line? (Obviously initializing the variable beforehand.
    – William
    Nov 27, 2009 at 18:16
  • 23
    You could even use the variable the other 99 times! ;-) Nov 27, 2009 at 18:17
  • @Jim: yes, I'm a bit TOO quick with the copy/paste. I also had an idea to use events: Increase x, raise an event whose listener prints the event arg (which contains x). I see the recursive solution was the selected answer. I had hoped someone would submit a lambda solution. ;) Nov 27, 2009 at 18:38
12
Enumerable.Range(1, 100)
    .Select(i => i.ToString())
    .ToList()
    .ForEach(s => Console.WriteLine(s));

Not sure if this counts as the loop is kind of hidden, but if it's legit it's an idiomatic solution to the problem. Otherwise you can do this.

    int count = 1;
top:
    if (count > 100) { goto bottom; }
    Console.WriteLine(count++);
    goto top;
bottom:

Of course, this is effectively what a loop will be translated to anyway but it's certainly frowned upon these days to write code like this.

0
9

No loops, no recursion, just a hashtable-like array of functions to choose how to branch:

using System;
using System.Collections.Generic;

namespace Juliet
{
    class PrintStateMachine
    {
        int state;
        int max;
        Action<Action>[] actions;

        public PrintStateMachine(int max)
        {
            this.state = 0;
            this.max = max;
            this.actions = new Action<Action>[] { IncrPrint, Stop };
        }

        void IncrPrint(Action next)
        {
            Console.WriteLine(++state);
            next();
        }

        void Stop(Action next) { }

        public void Start()
        {
            Action<Action> action = actions[Math.Sign(state - max) + 1];
            action(Start);
        }
    }

    class Program
    {
        static void Main(string[] args)
        {
            PrintStateMachine printer = new PrintStateMachine(100);
            printer.Start();
            Console.ReadLine();
        }
    }
}
8
Enumerable.Range(1, 100).ToList().ForEach(i => Console.WriteLine(i));

Here's a breakdown of what is happening in the above code:

Performance Consideration

The ToList call will cause memory to be allocated for all items (in the above example 100 ints). This means O(N) space complexity. If this is a concern in your app i.e. if the range of integers can be very high, then you should avoid ToList and enumerate the items directly.

Unfortunately ForEach is not part of the IEnumerable extensions provided out of the box (hence the need to convert to List in the above example). Fortunately this is fairly easy to create:

static class EnumerableExtensions
{
    public static void ForEach<T>(this IEnumerable<T> items, Action<T> func)
    {
        foreach (T item in items)
        {
            func(item);
        }
    }
}

With the above IEnumerable extension in place, now in all the places where you need to apply an action to an IEnumerable you can simply call ForEach with a lambda. So now the original example looks like this:

Enumerable.Range(1, 100).ForEach(i => Console.WriteLine(i));

The only difference is that we no longer call ToList, and this results in constant (O(1)) space usage... which would be a quite noticeable gain if you were processing a really large number of items.

2
  • 3
    Yea, but there's a loop in there!
    – user195488
    Jan 12, 2010 at 1:01
  • You can even pass a method group: Enumerable.Range(1, 100).ForEach(Console.WriteLine); Dec 31, 2010 at 21:15
8

Just for the ugly literal interpretation:

Console.WriteLine("numbers from 1 to 100 without using loops, ");

(you can laugh now or later, or not)

8

By the time I answer this, someone will already have it, so here it is anyway, with credit to Caleb:

void Main()
{
    print(0, 100);
}

public void print(int x, int limit)
{
    Console.WriteLine(++x);
    if(x != limit)
        print(x, limit);
}
0
7

I can think of two ways. One of them involves about 100 lines of code!

There's another way to reuse a bit of code several times without using a while/for loop...

Hint: Make a function that prints the numbers from 1 to N. It should be easy to make it work for N = 1. Then think about how to make it work for N = 2.

7

With regular expressions

using System.Text.RegularExpressions;

public class Hello1
{
   public static void Main()
   {

      // Count to 128 in unary
      string numbers = "x\n";
      numbers += Regex.Replace(numbers, "x+\n", "x$&");
      numbers += Regex.Replace(numbers, "x+\n", "xx$&");
      numbers += Regex.Replace(numbers, "x+\n", "xxxx$&");
      numbers += Regex.Replace(numbers, "x+\n", "xxxxxxxx$&");
      numbers += Regex.Replace(numbers, "x+\n", "xxxxxxxxxxxxxxxx$&");
      numbers += Regex.Replace(numbers, "x+\n", "xxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxx$&");
      numbers += Regex.Replace(numbers, "x+\n", "xxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxx$&");

      // Out of 1..128, select 1..100
      numbers = Regex.Match(numbers, "(.*\n){100}").Value;

      // Convert from unary to decimal
      numbers = Regex.Replace(numbers, "x{10}", "<10>");
      numbers = Regex.Replace(numbers, "x{9}", "<9>");
      numbers = Regex.Replace(numbers, "x{8}", "<8>");
      numbers = Regex.Replace(numbers, "x{7}", "<7>");
      numbers = Regex.Replace(numbers, "x{6}", "<6>");
      numbers = Regex.Replace(numbers, "x{5}", "<5>");
      numbers = Regex.Replace(numbers, "x{4}", "<4>");
      numbers = Regex.Replace(numbers, "x{3}", "<3>");
      numbers = Regex.Replace(numbers, "x{2}", "<2>");
      numbers = Regex.Replace(numbers, "x{1}", "<1>");
      numbers = Regex.Replace(numbers, "(<10>){10}", "<100>");
      numbers = Regex.Replace(numbers, "(<10>){9}", "<90>");
      numbers = Regex.Replace(numbers, "(<10>){8}", "<80>");
      numbers = Regex.Replace(numbers, "(<10>){7}", "<70>");
      numbers = Regex.Replace(numbers, "(<10>){6}", "<60>");
      numbers = Regex.Replace(numbers, "(<10>){5}", "<50>");
      numbers = Regex.Replace(numbers, "(<10>){4}", "<40>");
      numbers = Regex.Replace(numbers, "(<10>){3}", "<30>");
      numbers = Regex.Replace(numbers, "(<10>){2}", "<20>");
      numbers = Regex.Replace(numbers, "(<[0-9]{3}>)$", "$1<00>");
      numbers = Regex.Replace(numbers, "(<[0-9]{2}>)$", "$1<0>");
      numbers = Regex.Replace(numbers, "<([0-9]0)>\n", "$1\n");
      numbers = Regex.Replace(numbers, "<([0-9])0*>", "$1");

      System.Console.WriteLine(numbers);

   }
}

The output:

# => 1
# => 2
# ...
# => 99
# => 100
2
  • 5
    By which I guess you mean: "I'd give you as many +1's as the system would allow, but I'm sort of busy hammering a pencil into my brain with Knuth vol. 1. Thanks a lot." Jan 15, 2010 at 23:53
  • @Luke, I guess it is important that insanity follow the rules. Better now? Jun 13, 2011 at 22:43
5

Method A:

Console.WriteLine('1');
Console.WriteLine('print 2');
Console.WriteLine('print 3');
...
Console.WriteLine('print 100');

Method B:

func x (int j)
{
  Console.WriteLine(j);
  if (j < 100)
     x (j+1);
}

x(1);
3
  • 1
    I really don't want to downvote on such a silly question, but he did say using c#. :)
    – Donnie
    Nov 27, 2009 at 18:12
  • 2
    @Donnie, this seems to be a homework question, which means users are encouraged to not give the exact code, but rather enough of a push in the right direction for the OP to figure it out, which I think @wallyk has done quite well. +1
    – Brandon
    Nov 27, 2009 at 18:14
  • @Brandon, fair enough. And I didn't downvote either, was just saying :)
    – Donnie
    Nov 27, 2009 at 18:15
5

Just LINQ it...

Console.WriteLine(Enumerable.Range(1, 100)
                            .Select(s => s.ToString())
                            .Aggregate((x, y) => x + "," + y));
1
  • wouldn't this be in turn translated into a while loop anyway?
    – Luke
    Jun 12, 2011 at 19:29
2

I can think two ways:

  • using 100 Console.WriteLine
  • using goto in a switch statement
2

A completely unnecessary method:

int i = 1;
System.Timers.Timer t = new System.Timers.Timer(1);
t.Elapsed += new ElapsedEventHandler(
  (sender, e) => { if (i > 100) t.Enabled = false; else Console.WriteLine(i++); });
t.Enabled = true;
Thread.Sleep(110);
1
public void Main()
{
  printNumber(1);
}

private void printNumber(int x)
{
  Console.WriteLine(x.ToString());
  if(x<101)
  {
    x+=1;
    printNumber(x);
  }
}
2
  • LOl posted a similar answer 8 seconds after you :( Nov 27, 2009 at 18:16
  • 2
    shouldn't x be incremented? :D Stackoverflow!
    – Jack
    Nov 27, 2009 at 18:25
1

The cool and funny way:

static void F(int[] array, int n)
{
    Console.WriteLine(array[n] = n);
    F(array, n + 1);
}
static void Main(string[] args)
{
    try { F(new int[101], 1); }
    catch (Exception e) { }
}
1
class Program
{
    static int temp = 0;

    public static int a()
    {
        temp = temp + 1;

        if (temp == 100)
        {
            Console.WriteLine(temp);
            return 0;
        }

        else
            Console.WriteLine(temp);

        Program.a();
        return 0;
    }

    public static void Main()
    {
        Program.a();
        Console.ReadLine();
    }
}
0
PrintNum(1);
private void PrintNum(int i)
{
   Console.WriteLine("{0}", i);
   if(i < 100)
   {
      PrintNum(i+1);
   } 
}
0
namespace ConsoleApplication2 {
    class Program {
        static void Main(string[] args) {
            Print(Enumerable.Range(1, 100).ToList(), 0);
            Console.ReadKey();

        }
        public static void Print(List<int> numbers, int currentPosition) {
            Console.WriteLine(numbers[currentPosition]);
            if (currentPosition < numbers.Count - 1) {
                Print(numbers, currentPosition + 1);
            }
        }
    }
}
0

This is more or less pseudo code I havent done c# in years, PS running on 1 hour of sleep so i might be wrong.

int i = 0;

public void printNum(j){       
    if(j > 100){
        break;
    } else {
        print(j);
        printNum(j + 1);
    }
}
public void main(){
    print(i);
    printNum(i + 1);       
}
1
  • 2
    You want return; instead of break; in your edge case. And print() isn't the correct function -- presumably you want Console.WriteLine(). Nov 27, 2009 at 18:59
0

My solution is in thread 2045637, which asks the same question for Java.

0
class Program
{
    static Timer s = new Timer();
    static int i = 0;
    static void Main(string[] args)
    {
        s.Elapsed += Restart;
        s.Start();
        Console.ReadLine();
    }
    static void Restart(object sender, ElapsedEventArgs e)
    {
        s.Dispose();
        if (i < 100)
        {
            Console.WriteLine(++i);
            s = new Timer(1);
            s.Elapsed += Restart;
            s.Start();
        }
    }
}

You must notice that I'm NOT using recursion.

0

Feeling a bit naughty posting this:

   private static void Main()
    {
        AppDomain.CurrentDomain.FirstChanceException += (s, e) =>
        {
            var frames = new StackTrace().GetFrames();
            Console.Write($"{frames.Length - 2} ");
            var frame = frames[101];
        };

        throw new Exception();
    }
0
    [Test]
    public void PrintNumbersNoLoopOrRecursionTest()
    {
        var numberContext = new NumberContext(100);

        numberContext.OnNumberChange += OnNumberChange(numberContext);
        numberContext.CurrentNumber = 1;
    }

    OnNumberChangeHandler OnNumberChange(NumberContext numberContext)
    {
        return (o, args) =>
        {
            if (args.Counter > numberContext.LastNumber)
                return;

            Console.WriteLine(numberContext.CurrentNumber);

            args.Counter += 1;
            numberContext.CurrentNumber = args.Counter;
        };
    }


public delegate void OnNumberChangeHandler(object source, OnNumberChangeEventArgs e);
public class NumberContext
{
    public NumberContext(int lastNumber)
    {
        LastNumber = lastNumber;
    }

    public event OnNumberChangeHandler OnNumberChange;
    private int currentNumber;
    public int CurrentNumber
    {
        get { return currentNumber; }
        set {
            currentNumber = value;
            OnNumberChange(this, new OnNumberChangeEventArgs(value));
        }
    }

    public int LastNumber { get; set; }

    public class OnNumberChangeEventArgs : EventArgs
    {
        public OnNumberChangeEventArgs(int counter)
        {
            Counter = counter;
        }

        public int Counter { get; set; }
    }
0
static void Main(string[] args)
        {

            print(0);
        }

        public static void print(int i)
        {
            if (i >= 0 && i<=10)
            {

                i = i + 1;
                Console.WriteLine(i + " ");
                print(i);
            }
}
1
  • What is the diffenerence of this solution in comparison to the accepted answer?
    – slfan
    Nov 20, 2019 at 11:23

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