117

Would this be classified as an O(1) algorithm for "Hello, World!" ??

public class Hello1
{
   public static void Main()
   {
      DateTime TwentyYearsLater = new DateTime(2035,01,01);
      while ( DateTime.Now < TwentyYearsLater )
      { 
          System.Console.WriteLine("It's still not time to print the hello ...");
      }
      System.Console.WriteLine("Hello, World!");
   }
}

I'm thinking of using the

DateTime TwentyYearsLater = new DateTime(2035,01,01);
while ( DateTime.Now < TwentyYearsLater )
{ 
   // ... 
}

snippet of code as a busy loop to put in as a joke whenever someone asks for an algorithm of a certain complexity. Would this be correct?

  • 15
    This is O(N) complexity not O(1) – Fabjan Dec 2 '15 at 17:07
  • 19
    @SubparWebDev No, you don't know how many times it will get through the loop, even if you know the exact difference in time between when you start the program and the specified date. It's dependent on how fast the computer running it is, what else is running on it, how the CPU schedules the task, etc. – Servy Dec 2 '15 at 17:10
  • 129
    @Fabjan There is no N that the algorithm is dependent on, so you can't actually say that it's an O(N) algorithm. – Servy Dec 2 '15 at 17:12
  • 29
    Technically there is no input, so N does not even make any sense. But you could consider DateTime.Now an input which makes this still dependant on the result. If you can assume a realistic value for DateTime.Now, then yes, the program loops a constant amount of times. – poke Dec 2 '15 at 17:13
  • 43
    The problem statement must define what N is. – Yacoub Massad Dec 2 '15 at 17:15

15 Answers 15

403

Big O notation in this context is being used to describe a relationship between the size of the input of a function and the number of operations that need to be performed to compute the result for that input.

Your operation has no input that the output can be related to, so using Big O notation is nonsensical. The time that the operation takes is independent of the inputs of the operation (which is...none). Since there is no relationship between the input and the number of operations performed, you can't use Big O to describe that non-existent relationship

  • 6
    What about O(max(1, 2035 - yearTheProgramIsStarted))? – Bergi Dec 2 '15 at 19:12
  • 19
    @Bergi [Actually no[(stackoverflow.com/questions/34048740/…), you can't just describe the number of iterations of the loop purely based on the time that you run the job. And of course you combine that with the fact that the system clock can be changed at any time by the user to whatever time they want, etc.and you still don't have a well formed input that can be accurately related to a number of operations needed to produce the output. Heck, even the output itself isn't consistent. – Servy Dec 2 '15 at 19:26
  • 22
    One could argue that the state of the system (which includes the clock) is part of the input for the program. In that sense, you could use the date as an input parameter, albeit not explicit. It is odd, though. – Connor Clark Dec 2 '15 at 19:41
  • 9
    To be more clear, the 'implicit' input is the delta between Jan 1st, 2035 and today. – Connor Clark Dec 2 '15 at 19:44
  • 6
    @Hoten But the system time isn't a fixed value. This function is not the same as just accepting a DateTime for the start time as input. As I said earlier, the system clock can change over time. And again, you can't directly map the quazi input that you're describing to a fixed output. There is not a known number of operations performed for a given start time, or even for two programs that always get a sensible value of DateTime.Now, so you can't relate the two as the time changes, because you can't even relate them when the time doesn't change. – Servy Dec 2 '15 at 20:07
88

Big-O notation means roughly 'given an operation on an amount of work, N, how much calculation time, proportional to N, does the algorithm take?'. Eg, sorting an array of size N can take N^2, Nlog(N), etc.

This has no amount of input data to act on. So it's not O(anything).

Even worse; this isn't technically an algorithm. An algorithm is a method for computing the value of a mathematical function -- maths functions are a mapping from one input to an output. Since this takes no input and returns nothing, it's not a function, in the mathematical sense. From wikipedia:

An algorithm is an effective method that can be expressed within a finite amount of space and time and in a well-defined formal language for calculating a function. Starting from an initial state and initial input (perhaps empty), the instructions describe a computation that, when executed, proceeds through a finite number of well-defined successive states, eventually producing "output" and terminating at a final ending state.

What this is, technically, is a control system. From wikipedia;

A control system is a device, or set of devices, that manages, commands, directs or regulates the behavior of other devices or systems.

For people wanting a more in-depth answer about the difference between mathematical functions and algorithms, and the more powerful abilities of computers to do side-effecting things like console output, displaying graphics, or controlling robots, have a read of this paper on the Strong Church-Turing Hypothesis

Abstract

The classical view of computing positions computation as a closed-box transformation of inputs (rational numbers or finite strings) to outputs. According to the interactive view of computing, computation is an ongoing interactive process rather than a function-based transformation of an input to an output. Specifically, communication with the outside world happens during the computation, not before or after it. This approach radically changes our understanding of what is computation and how it is modeled.

The acceptance of interaction as a new paradigm is hindered by the Strong Church-Turing Thesis (SCT), the widespread belief that Turing Machines (TMs) capture all computation, so models of computation more expressive than TMs are impossible. In this paper, we show that SCT reinterprets the original Church-Turing Thesis (CTT) in a way that Turing never intended; its commonly assumed equivalence to the original is a myth. We identify and analyze the historical reasons for the widespread belief in SCT. Only by accepting that it is false can we begin to adopt interaction as an alternative paradigm of computation

  • It doesn't need to be a sequence. It's just some data input, and landau notation describes running time in relation to some metric(s) on that data - typically something size-related. – Bergi Dec 2 '15 at 19:14
  • @Bergi - yeah, see your point! Just making an approximation, really, but yeah -- if you can measure the amount of work to do, and the amount of steps it takes to get there, big-o reflects the relation of those two measures. Closer? – Steve Cooper Dec 2 '15 at 19:51
  • @kapep - it's not a pure function because it's a void method, but if we count console output, it's still random; it could output any of { "Hello, World!", "It's still not time to print the hello ...\nHello, World!", "It's still not time to print the hello ...It's still not time to print the hello ...\nHello, World!", ... } – Steve Cooper Dec 2 '15 at 20:00
  • 1
    Printing to stdout isn't an output? – rpax Dec 3 '15 at 7:25
  • 3
    @rpax Not mathematically, no. A function is an unchanging translation from inputs to outputs; eg, 'square' is the function that always returns 9 if you input 3. A c# method is only a maths function if a call with the same parameters always gives the same return value. Otherwise -- if it has side-effects like writing to the console, displaying graphics, allocating memory -- those aren't mathematical functions. (Gonna add a link to my answer that goes into it in excruciating detail :) ) – Steve Cooper Dec 3 '15 at 10:19
41

No, your code has time complexity of O(2^|<DeltaTime>|),

For a proper coding of the current time.
Please, let me first apologize for my English.

What is and how Big O works in CS

Big O notation is not used to tie the input of a program with its running time.
Big O notation is, leaving rigor behind, a way to express the asymptotic ratio of two quantities.

In the case of algorithm analysis these two quantities are not the input (for which one must first have a "measure" function) and the running time.
They are the length of the coding of an instance of the problem1 and a metric of interest.

The commonly used metrics are

  1. The number of steps required to complete the algorithm in a given model of computation.
  2. The space required, if any such concept exists, by the model of computation.

Implicitly is assumed a TM as the model so that the first point translates to the number of applications of the transition2 function, i.e. "steps", and the second one translates the number of different tape cells written at least once.

Is it also often implicitly assumed that we can use a polynomially related encoding instead of the original one, for example a function that search an array from start to end has O(n) complexity despite the fact that a coding of an instance of such array should have length of n*b+(n-1) where b is the (constant) number of symbols of each element. This is because b is considered a constant of the computation model and so the expression above and n are asymptotically the same.

This also explains why an algorithm like the Trial Division is an exponential algorithm despite essentially being a for(i=2; i<=sqr(N); i++) like algorithm3.

See this.

This also means that big O notation may use as many parameters one may needs to describe the problem, is it not unusual to have a k parameter for some algorithms.

So this is not about the "input" or that "there is no input".

Study case now

Big O notation doesn't question your algorithm, it just assumes that you know what you are doing. It is essentially a tool applicable everywhere, even to algorithm which may be deliberately tricky (like yours).

To solve your problem you used the current date and a future date, so they must be part of the problem somehow; simply put: they are part of the instance of the problem.

Specifically the instance is:

<DeltaTime>

Where the <> means any, non pathological, coding of choice.

See below for very important clarifications.

So your big O complexity time is just O(2^|<DeltaTime>|), because you do a number of iteration that depends on the value of current time. There is no point in putting other numeric constants as the asymptotic notation is useful as it eliminates constants (so for example the use of O(10^|<DeltaTime>|*any_time_unit) is pointless).

Where the tricky part is

We made one important assumption above: that the model of computation reificates5 time, and by time I mean the (real?) physical time. There is no such concept in the standard computational model, a TM does not know time, we link time with the number of steps because this is how our reality work4.

In your model however time is part of the computation, you may use the terminology of functional people by saying that Main is not pure but the concept is the same.

To understand this one should note that nothing prevent the Framework to using a fake time that run twice, five, ten times faster that physical time. This way your code will run in "half", "one fifth", "one tenth" of the "time".

This reflection is important for choosing the encoding of <DeltaTime>, this is essentially a condensed way of writing <(CurrentTime, TimeInFuture)>. Since time does not exist at priory, the coding of CurrentTime could very well be the word Now (or any other choice) the day before could be coded as Yesterday, there by breaking the assumption that the length of the coding increase as the physical time goes forward (and the one of DeltaTime decreases)

We have to properly model time in our computational model in order to do something useful.

The only safe choice we can do is to encode timestamps with increasing lengths (but still not using unary) as the physical time steps forward. This is the only true property of time we need and the one the encoding needs to catch. Is it only with this type of encoding that your algorithm maybe given a time complexity.

Your confusion, if any, arise from the fact that the word time in the phrases 'What is its time complexity?' and 'How much time will it take?' means to very very different things

Alas the terminology use the same words, but you can try using "steps complexity" in your head and re-ask yourself your question, I hope that will help you understand the answer really is ^_^


1 This also explains the need of an asymptotic approach as each instance has a different, yet not arbitrary, length.
2 I hope I'm using the correct English term here.
3 Also this is why we often find log(log(n)) terms in the math.
4 Id est, a step must occupy some finite, but not null, nor not connected, interval of time.
5 This means that the computational mode as a knowledge of physical time in it, that is can express it with its terms. An analogy are how generics work in the .NET framework.

  • 3
    "So your big O running time is just" .. I'm sure you meant 'big O complexity'?. Also, we can still just call 'deltaTime' our 'n' right.. so your saying O(2^N) something like the complexity of the Fibonacci algorithm. How did you come to the "2^"? – Ross Dec 3 '15 at 6:10
  • @Ross, thank for the point. I came with 2 out of habit for working with binary numbers. The point is that the steps are linear with the length of the representation of the number. The actual base is not really important and varies based on the specific encoding. It is pseudo linear. – Yuni Mj Dec 3 '15 at 19:32
  • I'm sorry, but could you please elaborate more in your answer how you concluded that the complexity is O(2^n)? It's not clear for beginners. – Arturo Torres Sánchez Dec 3 '15 at 21:03
  • 1
    @YuniMj While your reasoning is technically not wrong, I think that by insisting to measure the size of DeltaTime instead of its value, you're just adding additional confusion. For example, but that reasoning no optimal sort algorithm has time complexity $O(n\cdot log n)$. Why? Because you you either only finitely many distinguishable objects to sort, in which case you can always use bucket sort to sort in $O(n)$. Or your object size is unbounded, in which case $O(n\cdot log n)$ won't hold, since a single comparison won't have constant time anymore... – fgp Dec 4 '15 at 22:58
  • 1
    FWIW O(2^n) != O(10^n) stackoverflow.com/questions/19081673/… – Nathan FD Dec 6 '15 at 3:44
29

Although there are a bunch of great answers here, let me rephrase all of them a bit.

Big-O notation exists to describe functions. When applied to analysis of algorithms this requires us to first define some characteristic of this algorithm in terms of a function. The common choice is considering number of steps as a function of input size. As noted in other answers, coming up with such function in your case seems strange, because there is no clearly defined "input". We can still try to do it, though:

  • We can regard your algorithm as a constant function which takes any input of any size, ignores it, waits a fixed amount of time, and finishes. In this case its runtime is f(n) = const, and it is a O(1)-time algorithm. This is what you expected to hear, right? Yes, it is, technically, an O(1)-algorithm.
  • We can regard the TwentyYearsLater as the "input-size"-like parameter of interest. In this case the runtime is f(n) = (n-x) where x is the "now time" at the moment of invocation. When seen this way, it is a O(n)-time algorithm. Expect this counter-argument whenever you go showing your technically O(1)-algorithm to other people.
  • Oh, but wait, if k=TwentyYearsLater is the input, then its size n is, actually, the number of bits needed to represent it, i.e. n = log(k). The dependency between the size of the input n and runtime is therefore f(n) = 2^n - x. Seems like your algorithm has just become exponentially slow! Ugh.
  • Another input to the program is in fact the stream of answers given by the OS to the sequence of DateTime.Now invocations in the loop. We can actually imagine that this whole sequence is provided as input at the moment we run the program. The runtime can then be considered to depend on the property of this sequence - namely its length until the first TwentyYearsLater element. In this case the runtime is again f(n) = n and the algorithm is O(n).

But then again, in your question you did not even say you were interested in runtime. What if you meant memory use? Depending on how you model the situation you can say the algorithm is O(1)-memory or, perhaps, O(n)-memory (if the implementation of DateTime.Now requires to keep track of the whole invocation sequence somewhy).

And if your goal was to come up with something absurd, why don't you go all in and say that you are interested in how the size of the algorithm's code in pixels on the screen depends on the chosen zoom level. This might be something like f(zoom) = 1/zoom and you can proudly declare your algorithm to be O(1/n)-pixel size!

  • +1. I believe the "stream of answers given by the OS to the sequence of DateTime.Now invocations` is the real input here. But I think the conclusion should not be that it's O(n), but it's O(k), where k is the length until the first TwentyYearsLater element. – justhalf Dec 3 '15 at 3:55
  • 7
    This is the best answer so far - in order for Big O to be meaningful you have to apply mathematical semantics/assumptions to the physical implementation (essentially defining a mathematical model for the program with a meaningful definition of "input"). In this sense the complexity of the "program" depends on the semantics you apply - if you assume that N is the time difference which scales linearly with the number of operations, it's O(n). If you assume a fixed number of operations as a result of a fixed period of time, it's O(1). – Ant P Dec 3 '15 at 7:18
21

I have to disagree with Servy slightly. There is an input to this program, even if it's not obvious, and that's the system's time. This might be a technicality you hadn't intended, but your TwentyYearsFromNow variable isn't twenty years from the system's time now, it's statically assigned to January 1st, 2035.

So if you take this code and execute it on a machine that has a system time of January 1st, 1970, it's going to take 65 years to complete, regardless of how fast the computer is (there may be some variation if its clock is faulty). If you take this code and execute it on a machine that has a system time of January 2nd, 2035, it will complete almost instantly.

I would say your input, n, is January 1st, 2035 - DateTime.Now, and it's O(n).

Then there's also the issue of the number of operations. Some people have noted that faster computers will hit the loop faster, causing more operations, but that's irrelevant. When working with big-O notation, we don't consider the speed of the processor or the exact number of operations. If you took this algorithm and ran it on a computer, and then ran it again but for 10x longer on the same computer, you would expect the number of operations to grow by the same factor of 10x.

As for this:

I'm thinking of using the [redacted code] snippet of code as a busy loop to put in as a joke whenever someone asks for an algorithm of a certain complexity. Would this be correct?

No, not really. Other answers have covered this, so I just wanted to mention it. You can't generally correlate years of execution to any big-O notation. Eg. There's no way to say 20 years of execution = O(n^87) or anything else for that matter. Even in the algorithm you gave, I could change the TwentyYearsFromNow to the year 20110, 75699436, or 123456789 and the big-O is still O(n).

  • 7
    The time isn't an input to the function, it's constantly changing state that is observed throughout the execution of the method. The system clock can even be changed while the function is running. For Big O to be meaningful you would also need to have each input correspond 1-1 with an output value, as well as a number of operations necessary to compute it. For this operation the output isn't even consistent for the same input (in fact it varies wildly), in addition to the number of operations performed also varying wildly. – Servy Dec 2 '15 at 20:00
  • When working with big-O notation, we don't consider the speed of the processor or the exact number of operations. This is a false statement. Pretty much any sensible operation that you would try to compute the Big O value of isn't going to change the number of operations performed based on the hardware, but this one does. Big O is just a way of relating the number of operations to the size of the input. For most operations that is independent of system hardware. In this case it is not. – Servy Dec 2 '15 at 20:02
  • If you took this algorithm and ran it on a computer, and then ran it again but for 10x longer on the same computer, you would expect the number of operations to grow by the same factor of 10x. That's also a false statement. The environment won't necessarily alter the number of operations in the loop linearly. There could, for example, be other programs on the computer that use more or less CPU time at different points in time, changing the time given to this application constantly over time. – Servy Dec 2 '15 at 20:03
  • I'm with @Servy on this one, but for a slightly different reason. The main function takes no parameters and returns no input. It's a function of nil => nil, if you like. Doesn't matter what the time is, it still returns nothing. – Steve Cooper Dec 2 '15 at 20:10
  • 1
    If we're using this definition -- "In mathematics, a function is a relation between a set of inputs and a set of permissible outputs with the property that each input is related to exactly one output." (wikipedia) -- and we're counting the console output as 'the output of the function', this varies, getting longer on faster computer, because it will write ""It's still not time to print the hello ..."" more often. – Steve Cooper Dec 2 '15 at 20:12
13

Big-O analysis deals with the amount of processing involved as the amount of data being processed increases without limit.

Here, you're really only dealing with a single object of fixed size. As such, applying big-O analysis depends heavily (primarily?) upon how you define your terms.

For example, you could mean printing output in general, and imposing a wait so long that any reasonable amount of data would/will be printed in precisely the same period of time. You also have to add a little more in the way of somewhat unusual (if not outright wrong) definitions to get very far though--particularly, big-O analysis is usually defined in terms of the number of fundamental operations needed to carry out a particular task (but note that complexity can also be considered in terms of things like memory use, not just CPU use/operations carried out).

The number of fundamental operations usually translates fairly closely to time taken, however, so it isn't a huge stretch treat the two as synonymous. Unfortunately, however, we're still stuck with that other part: the amount of data being processed increasing without limit. That being the case, no fixed delay you can impose will really work. To equate O(1) with O(N), you'd have to impose an infinite delay so that any fixed amount of data took forever to print, just as an infinite amount of data would.

10

big-O relative to what?

You seem to be intuiting that twentyYearsLater is an "input". If indeed you wrote your function as

void helloWorld(int years) {
   // ...
}

It would be O(N) where N = years (or just say O(years)).

I would say your algorithm is O(N) relative to whatever number you happen to write in the line of code starting with twentyYearsLater =. But people do usually not consider numbers in the actual source code as the input. They might consider the command line input as the input, or the function signature input as the input, but, most likely not the source code itself. That is what you are disputing with your friend - is this the "input"? You set up your code in a way to make it intuitively seem like an input, and you can definitely ask its big O running time with respect to the number N on line 6 of your program, but if you use such a non-default choice as input you really need to be explicit about it.

But if you take the input to be something more usual, like the command line or the input to the function, there is no output at all and the function is O(1). It takes twenty years, but since big-O does not change up to a constant multiple, O(1) = O(twenty years).

Similar question - what is the runtime of:

void sortArrayOfSizeTenMillion(int[] array)

Assuming it does what it says and the input is valid, and the algorithm harnesses a quicksort or bubble sort or anything reasonable, it's O(1).

  • Hardcoding the input doesn't mean the input disappears. Nor are quicksort and bubblesort of O(1) time complexity in any instance. bigocheatsheet.com – Theo Brinkman Dec 4 '15 at 16:14
  • @TheoBrinkman If you want to be technical, in a Turing machine model, encoding what you think of the input, into the Turing machine itself, makes it, by definition, not the input. The Turing machine will then run in a constant time independent of whatever actual input it has. It is in some sense not running a "bubble sort" since it's not sorting anything but rather operating on its own representation, however in non-technical terms of course you could describe the algorithm as a bubble sort. – djechlin Dec 4 '15 at 16:31
  • In equally 'non-technical terms', you could describe the algorithm in question as a suspension bridge. – Theo Brinkman Dec 4 '15 at 20:14
  • @TheoBrinkman no, you could not. That would not make sense to anyone. – djechlin Dec 4 '15 at 20:21
  • It makes every bit as much sense as describing it as an O(1) bubble sort. – Theo Brinkman Dec 4 '15 at 20:33
8

This "algorithm" is correctly described as O(1) or constant time. It's been argued that there is no input to this program, hence there is no N to analyze in terms of Big Oh. I disagree that there is no input. When this is compiled into an executable and invoked, the user can specify any input of arbitrary length. That input length is the N.

The program just ignores the input (of whatever length), so the time taken (or the number of machine instructions executed) is the same irrespective of the length of the input (given fixed environment = start time + hardware), hence O(1).

  • But the number of operations isn't necessarily consistent, even with the same start time and hardware. On top of that, to claim an O(1) algorithm the output would have to always be constant, and it's not, it will vary wildly based on the start time and hardware. It could also very easily be infinite, which is certainly not constant. There is no relationship between the input you've defined and the number of operations performed. That's not constant, that's just undefined. You can't name a finite number and know that there will always be less operations than that. – Servy Dec 4 '15 at 14:20
  • The maximum real time that it will take is 20 years. If we start it in the future, yes it will take longer. Let's suppose that there is a finite lower bound on the amount of time a loop iteration takes and that we are running on serial hardware. Then, I can bound the number of times the loop will run, which means the entire computation can be bounded by a constant function, no matter the size of the ignored input. – waldol1 Dec 8 '15 at 0:34
  • Let's suppose that there is a finite lower bound on the amount of time a loop iteration takes That's a false assumption. The program can run forever. All I have to do is set my system clock to 50 years from now, start it, and it'll never finish. Or I could keep moving the clock back faster than it moves forward, or start it at an indeterminate point in the past. You simply cannot assume that there's a lower bound on how long the program runs; it can run forever. But, even if we take your (false) assumption as true, you still can't relate the number of operations performed to the input. – Servy Dec 8 '15 at 2:17
  • A single loop iteration takes a finite amount of time. It might be possible for it to execute an infinite number of times, but each one should be roughly constant. I don't see a problem with that assumption. – waldol1 Dec 15 '15 at 0:43
  • By that [completely incorrect] logic every single algorithm every is always O(1) because every individual operation is always constant. You're simply demonstrating that you don't know what Big O even is. It's a tool for (in context) describing the relationship between the size of the input an the number of relevant operations performed. O(1) means that there are a constant number of operations performed regardless of the input. Here there aren't a constant number of operations performed regardless of the input, there are potentially infinite operations performed, infinite != constant. – Servy Dec 15 '15 at 3:50
6

One thing I'm surprised hasn't been mentioned yet: big-O notation is an upper bound!

The issue everyone has noticed is that there is no N describing the inputs to the algorithm, so there is nothing to do big-O analysis with. However, this is easily mitigated with some basic trickery, such as accepting an int n and printing "Hello World" n times. That would get around that complaint and get back to the real question of how that DateTime monstrosity works.

There is no actual guarantee that the while loop will ever terminate. We like to think it has to at some time, but consider that DateTime.now returns the system date and time. There is actually no guarantee that this is monotonically increasing. It is possible that there is some pathologically trained monkey constantly changing the system date and time back to October 21, 2015 12:00:00 UTC until someone gives the monkey some auto-fitting shoes and a hoverboard. This loop can actually run for an infinite amount of time!

When you actually dig into the mathematical definition of big-O notations, they are upper bounds. They demonstrate the worst case scenario, no matter how unlikely. The worst case* scenario here is an infinite runtime, so we are forced to declare that there is no big-O notation to describe the runtime complexity of this algorithm. It doens't exist, just as 1/0 doesn't exist.

* Edit: from my discussion with KT, it is not always valid to presume the scenario we are modeling with big-O notation is the worst-case. In most cases, if an individual fails to specify which case we're using, they intended to explore the worst case. However, you can do a big-O complexity analysis on the best-case runtime.

  • 2
    O is, in a sense an "upper bound", indeed, but it does not mean you can only speak of "worst-case complexity" using the O-notation. Expected complexity, best-case complexity, any other functional property - all of them can be discussed in terms of their O bounds. – KT. Dec 3 '15 at 11:34
  • @KY best case complexity is called little-o, and expected complexity is big-theta. big-o is always worst case complexity, by its mathematical definition. – Cort Ammon Dec 3 '15 at 15:21
  • No, you are mistaken here. Re-check the definitions. – KT. Dec 3 '15 at 15:23
  • @KT Okay, I'll recheck them. You recheck them too. en.wikipedia.org/wiki/Big_O_notation Its under Family of Bachmann–Landau notations – Cort Ammon Dec 3 '15 at 15:26
  • I suppose you could do someting insane like take a function f and declare function g to be the same as f, but with a restricted domain to only include f's best case, and then do big-oh on g, but it starts to sound degenerate when you do that. – Cort Ammon Dec 3 '15 at 15:29
5

Complexity is used to measure computational "horsepower" in terms of time/space. Big O notation is used to compare which problems are "computable" or "not computable" and also to compare which solutions -algorithms- are better than other. As such, you can divide any algorithm into two categories: those that can be solved in polynomial time and those that can't.

Problems like the Sieve of Erathostene are O(n ^exp) and thus are solvable for small values of n. They are computable, just not in polynomial time (NP) and thus when asked if a given number is prime or not, the answer depends on the magnitude of such number. Moreover, complexity does not depend on the hardware, so having faster computers changes nothing...

Hello World is not an algorithm and as such is senseless to attempt to determine its complexity -which is none. A simple algorithm can be something like: given a random number, determine if it is even or odd. Now, does it matter that the given number has 500 digits? No, because you just have to check if the last digit is even or odd. A more complex algorithm would be to determine if a given number divides evenly by 3. Although some numbers are "easy" to compute, others are "hard" and this is because of its magnitude: compare the time it takes to determine the remaninder between a number with one digit and other with 500 digits.

A more complex case would be to decode a text. You have an apparent random array of symbols which you also know are conveying a message for those having the decrypting key. Let's say that the sender used the key to the left and your Hello World would read: Gwkki Qieks. The "big-hammer, no-brain" solution would produce all combinations for those letters: from Aaaa to Zzzz and then search a word dictionary to identify which words are valid and share the two common letters in the cypher (i, k) in the same position. This transformation function is what Big O measures!

4

Most people seem to be missing two very important things.

  1. The program does have an input. It is the hard-coded date/time against which the system time is being compared. The inputs are under the control of the person running the algorithm,and the system time is not. The only thing the person running this program can control is the date/time they've hard-coded into the comparison.

  2. The program varies based on the input value, but not the size of the input set, which is what big-O notation is concerned with.

Therefore, it is indeterminate, and the best 'big-O' notation for this program would probably be O(null), or possibly O(NaN).

  • 1
    (2) is flat-out wrong. Usually the "length of the input" is considered. For a list or array of fixed-size objects (like integers) it will indeed be the size of the set. To factor a number like 1395195191600333 it will be the length of its binary (or decimal, etc.) representation i.e. the number of digits. As stated your definition in (2) prohibits using big-O to discuss the complexity of "findPrimeFactors(int num)", which most every cryptographer will object to. – djechlin Dec 4 '15 at 23:25
4

Everyone’s correctly pointed out that you don’t define N, but the answer is no under the most reasonable interpretation. If N is the length of the string we’re printing and “hello, world!” is just an example, as we might infer from the description of this as an algorithm “for hello, world!,” then the algorithm is O(N), because you might have an output string that takes thirty, forty or fifty years to print, and you’re adding only a constant time to that. O(kN+c) ∈ O(N).

Addendum:

To my surprise, someone is disputing this. Recall the definitions of big O and big Θ. Assume we have an algorithm that waits for a constant amount of time c and then prints out a message of length N in linear time. (This is a generalization of the original code sample.) Let’s arbitrarily say that we wait twenty years to start printing, and that printing a trillion characters takes another twenty years. Let c = 20 and k = 10¹², for example, but any positive real numbers will do. That’s a rate of d = c/k (in this case 2×10⁻¹¹) years per character, so our execution time f(N) is asymptotically dN+c years. Whenever N > k, dN = c/k N > c. Therefore, dN < dN+c = f(N) < 2 dN for all N > k, and f(N) ∈ Θ(N). Q.E.D.

  • Where we have N = 13. – djechlin Dec 3 '15 at 13:41
  • But it doesn't just print "Hello world", it prints an unknown number of "It's still not time" lines. Additionally, Big O is not really used to compare the size of the input to the size of the output, it's generally used to compare the size of the input to the number of operations, or the amount of memory used. – Servy Dec 4 '15 at 14:23
  • @Servy It’s constant memory, but I was implicitly bounding the execution time. The size of the output is O(N) too, for an arbitrary string: the string we print when it’s time could be arbitrarily large, even in comparison to twenty years’ worth of please-wait messages. – Davislor Dec 4 '15 at 20:11
  • @Servy I’ve edited to clarify that, no, N here is not the size of the output. I’m not sure how I gave that impression, but I’ll remove any ambiguity. – Davislor Dec 4 '15 at 20:15
  • 1
    So if you assume the program takes an input, when it doesn't, that the output can be arbitrarily large, when it can't, that the loop doesn't do anything, when it does, and that the output is related to the input, when it isn't, then yes, the program is linear. Of course, every single one of those assumptions is completely false, so the conclusion that you've drawn from those doesn't hold. If you're able to demonstrate your point without making false assumptions, then it'd mean something. – Servy Dec 5 '15 at 22:49
4

I think people are getting thrown off because the code doesn't look like a traditional algorithm. Here is a translation of the code that is more well-formed, but stays true to the spirit of OP's question.

void TrolloWorld(long currentUnixTime, long loopsPerMs){
    long laterUnixTime = 2051222400000;  //unix time of 01/01/2035, 00:00:00
    long numLoops = (laterUnixTime-currentUnixTime)*loopsPerMs;

    for (long i=0; i<numLoops; i++){
        print ("It's still not time to print the hello …");
    }
    print("Hello, World!");
}

The inputs are explicit whereas before they were implicitly given by the time the code was started at and by the speed of the hardware running the code. The code is deterministic and has a well-defined output for given inputs.

Because of the limitations that are imposed on the inputs we can provide, there is an upper bound to the number of operations that will be executed, so this algorithm is in fact O(1).

2

At this point in time, yes

This algorithm has an implicit input, namely the time that the program is started at. The execution time will vary linearly1 depending on when it is started. During the year 2035 and after, the while loop immediately exits and the program terminates after constant operations2. So it could be said that the runtime is O(max(2035 - start year, 1))3. But since our start year has a minimum value, the algorithm will never take more than 20 years to execute (i.e. a constant value).

You can make your algorithm more in keeping with your intent by defining DateTime TwentyYearsLater = DateTime.Now + new TimeSpan(365*20,0,0,0);4

1 This holds for the more technical sense of execution time measured as number of operations because there is a maximum number of operations per time unit.
2 Assuming fetching DateTime.Now is a constant operation, which is reasonable.
3 I'm somewhat abusing big O notation here because this is a decreasing function with respect to start year, but we could easily rectify this by expressing it in terms of years prior to 2035.
4 Then the algorithm no longer depends on the implicit input of the start time, but that's of no consequence.

1

I'd argue that this is O(n). using http://www.cforcoding.com/2009/07/plain-english-explanation-of-big-o.html as a reference.

What is Big O?

Big O notation seeks to describe the relative complexity of an algorithm by reducing the growth rate to the key factors when the key factor tends towards infinity.

and

The best example of Big-O I can think of is doing arithmetic. The basic arithmetic operations we learnt in school were:

addition; subtraction; multiplication; and division. Each of these is an operation or a problem. A method of solving these is called an algorithm.

For your example,

given the input of n = 20 (with units years).

the algorithm is a mathematical function f(). where f() happens to be wait for n years, with 'debug' strings in between. The scale factor is 1. f() can be reduced/or increased by changing this scale factor.

for this case, the output is also 20 (changing the input changes the output linearly).

essentially the function is

f(n) = n*1 = n
    if  n = 20, then 
f(20) = 20 

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