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Is there a performance difference between i++ and ++i if the resulting value is not used?

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73  
Relax, just because you don't understand the rationale doesn't make the rationale ridiculous or pointless. People have upvoted this question because understanding the answer has helped them better understand something about the C language. The answer also shows an interesting way to demonstrate that the two pieces of code are semantically identical. –  Mark Harrison Oct 6 '10 at 21:18
    
This is an excellent question, Mark! I would appreciate any info (numeric estimates in particular) on i++ versus ++i performance comparison (speed of execution in plain English) in typical for loop coded in C# 4.0 or 5.0, like e.g.: for (int i=0; i<10000; i++){string _s="hello world";} vs the same w/++i. Thanks and regards, –  Alex Bell May 12 '13 at 23:13

13 Answers 13

up vote 182 down vote accepted

Executive summary: No.

i++ could potentially be slower than ++i, since the old value of i might need to be saved for later use, but in practice all modern compilers will optimize this away.

We can demonstrate this by looking at the code for this function, both with ++i and i++.

$ cat i++.c
extern void g(int i);
void f()
{
    int i;

    for (i = 0; i < 100; i++)
        g(i);

}

The files are the same, except for ++i and i++:

$ diff i++.c ++i.c
6c6
<     for (i = 0; i < 100; i++)
---
>     for (i = 0; i < 100; ++i)

We'll compile them, and also get the generated assembler:

$ gcc -c i++.c ++i.c
$ gcc -S i++.c ++i.c

And we can see that both the generated object and assembler files are the same.

$ md5 i++.s ++i.s
MD5 (i++.s) = 90f620dda862cd0205cd5db1f2c8c06e
MD5 (++i.s) = 90f620dda862cd0205cd5db1f2c8c06e

$ md5 *.o
MD5 (++i.o) = dd3ef1408d3a9e4287facccec53f7d22
MD5 (i++.o) = dd3ef1408d3a9e4287facccec53f7d22
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2  
I know this question is about C, but I'd be interested to know if browsers can do this optimization for javascript. –  TM. Aug 12 '09 at 21:58
12  
So the "No" is true for the one compiler you tested with. –  Andreas Jan 25 '11 at 8:59
44  
@Andreas: Good question. I used to be a compiler writer, and had the opportunity to test this code on many CPUs, operating systems, and compilers. The only compiler I found that didn't optimize the i++ case (in fact, the compiler that brought this to my attention professionally) was the Software Toolworks C80 compiler by Walt Bilofsky. That compiler was for Intel 8080 CP/M systems. It's safe to say that any compiler which does not include this optimization is not one meant for general use. –  Mark Harrison Jan 25 '11 at 20:55
6  
Even though the performance difference is negligible, and optimized out in many cases - please take note that it's still good practice to use ++i instead of i++. There's absolutely no reason not to, and if your software ever passes through a toolchain that doesn't optimize it out your software will be more efficient. Considering it is just as easy to type ++i as it is to type i++, there is really no excuse to not be using ++i in the first place. –  monokrome Jul 5 '12 at 17:45
3  
@monokrome As developers can provide their own implementation for the prefix and postfix operators in many languages, this may not always be an acceptable solution for a compiler to make without first comparing those functions, which may be non-trivial. –  pickypg Sep 20 '12 at 0:50

From Efficiency versus intent by Andrew Koenig :

First, it is far from obvious that ++i is more efficient than i++, at least where integer variables are concerned.

And :

So the question one should be asking is not which of these two operations is faster, it is which of these two operations expresses more accurately what you are trying to accomplish. I submit that if you are not using the value of the expression, there is never a reason to use i++ instead of ++i, because there is never a reason to copy the value of a variable, increment the variable, and then throw the copy away.

So, if the resulting value is not used, I would use ++i. But not because it is more efficient: because it correctly states my intent.

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3  
Let's not forget that other unary operators are prefix as well. I think ++i is the "semantic" way to use a unary operator, while i++ is around in order to fit a specific need (evaluation before addition). –  TM. Aug 12 '09 at 21:55
6  
If the resulting value is not used, there's no difference in semantics: i.e., there is no basis for prefering one or the other construct. –  Eamon Nerbonne Sep 17 '10 at 9:20
3  
As a reader, I see a difference. So as a writer, I'll show my intent by choosing one over the other. It's just a habit I have, to try to communicate with my programmer friends and teammates through code :) –  Sébastien RoccaSerra Sep 17 '10 at 9:47
2  
Why would i++ create a copy instead of simply postponing the increment until after the expression referencing the variable is completed? Were older compilers not smart enough to do that? –  JAB Jul 3 '12 at 15:10
3  
Following Koenig's advice, I code i++ the same way I'd code i += n or i = i + n, i.e., in the form target verb object, with the target operand to the left of the verb operator. In the case of i++, there is no right object, but the rule still applies, keeping the target to the left of the verb operator. –  David R Tribble Jan 27 at 18:07

A better answer is that ++i will sometimes be faster but never slower.

Everyone seems to be assuming that 'i' is a regular built-in type such as int. In this case there will be no measurable difference.

However if 'i' is complex type then you may well find a measurable difference. For i++ you must make a copy of your class before incrementing it. Depending on what's involved in a copy it could indeed be slower since with ++it you can just return the final value.

Foo Foo::operator++()
{
  Foo oldFoo = *this; // copy existing value - could be slow
  // yadda yadda, do increment
  return oldFoo;
}

Another difference is that with ++i you have the option of returning a reference instead of a value. Again, depending on what's involved in making a copy of your object this could be slower.

A real-world example of where this can occur would be the use of iterators. Copying an iterator is unlikely to be a bottle-neck in your application, but it's still good practice to get into the habit of using ++i instead of i++ where the outcome is not affected.

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14  
The question explicitly states C, no reference to C++. –  Dan Cristoloveanu Oct 10 '08 at 23:00
1  
This (admittedly old) question was about C, not C++, but I figure it's also worth mentioning that, in C++, even if a class implements post- and pre-fix operators, they're not even necessarily related. For example bar++ may increment one data member, while ++bar may increment a different data member, and in this case, you wouldn't have the option to use either, as the semantics are different. –  Kevin Mar 10 at 19:51

Paul, good point. Since ++i and i++ are really calls to the function operator++, the compiler can't optimize away the temporary intermediate variable. So it's definitely true for C++ objects that ++i is more efficient.

Thanks for that clarification!

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@Mark Harrison The C++ compiler is allowed to eliminate stack based temporaries even if doing so changes program behavior. MSDN link for VC 8: msdn.microsoft.com/en-us/library/ms364057(VS.80).aspx –  Mat Noguchi Aug 27 '08 at 13:42
    
As I commtented to this in the other thread, NRVO brings the additional useless copies from 2 to 1; the compiler can't replace i++ with ++i when the definition aren't available (and when inlining is done, it doesn't replace i++ with ++i, it just optimizes to code equivalent to inlined ++i). –  Blaisorblade Jan 15 '09 at 0:24
7  
Yes, for C++, but your question was about C. –  Arafangion Jun 16 '09 at 3:54

Here's an additional observation if you're worried about micro optimisation. Decrementing loops can 'possibly' be more efficient than incrementing loops (depending on instruction set architecture e.g. ARM), given:

for (i = 0; i < 100; i++)

On each loop you you will have one instruction each for:

  1. Adding 1 to i
  2. Compare whether i is less than a 100
  3. A conditional branch if i is less than a 100

Whereas a decrementing loop:

for (i = 100; i != 0; i--)

The loop will have an instruction for each of:

  1. Decrement i, setting the CPU register status flag
  2. A conditional branch depending on CPU register status (Z==0)

Of course this works only when decrementing to zero!

Remembered from the ARM System Developer's Guide.

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Good one. But doesn't this create fewer cache hits? –  AndreasT Aug 11 '09 at 14:17
    
There is an old weird trick from code optimization books, combining advantage of zero-test branch with incremented address. Here's example in high level language(probably useless, since many compilers are smart enough to replace it with less efficient but more common loop code): int a[N]; for( i = -N; i ; ++i) a[N+i] += 123; –  noop Jul 23 '10 at 23:38
    
@noop could you possibly elaborate on which code optimization books you refer to? I have struggled to find good ones. –  mezamorphic May 14 '12 at 12:45
    
This answer isn't an answer to the question at all. –  monokrome Jul 5 '12 at 17:54
    
@mezamorphic For x86 my sources are: Intel optimization manuals, Agner Fog, Paul Hsieh, Michael Abrash. –  noop Oct 2 '12 at 9:54

Taking a leaf from Scott Meyers, More Effective c++ Item 6: Distinguish between prefix and postfix forms of increment and decrement operations.

The prefix version is always preferred over the postfix in regards to objects, especially in regards to iterators.

The reason for this if you look at the call pattern of the operators.

// Prefix
Integer& Integer::operator++()
{
    *this += 1;
    return *this;
}

// Postfix
const Integer Integer::operator++(int)
{
    Integer oldValue = *this;
    ++(*this);
    return oldValue;
}

Looking at this example it is easy to see how the prefix operator will always be more efficient than the postfix. Because of the need for a temporary object in the use of the postfix.

This is why when you see examples using iterators they always use the prefix version.

But as you point out for int's there is effectively no difference because of compiler optimisation that can take place.

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3  
I think his question was directed at C, but for C++ you're absolutely right, and furthermore C people should adopt this as they can use it for C++ as well. I far too often see C programmers use the postfix syntax ;-) –  Anders Rune Jensen Dec 16 '08 at 15:39

In C, the compiler can generally optimize them to be the same if the result is unused.

However, in C++ if using other types that provide their own ++ operators, the prefix version is likely to be faster than the postfix version. So, if you don't need the postfix semantics, it is better to use the prefix operator.

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Please don't let the question of "which one is faster" be the deciding factor of which to use. Chances are you're never going to care that much, and besides, programmer reading time is far more expensive than machine time.

Use whichever makes most sense to the human reading the code.

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1  
I believe it is wrong to prefer vague readability improvements to actual efficiency gains and overall clarity of intent. –  noop Jul 21 '10 at 11:53
3  
My term "programmer reading time" is roughly analogous to "clarity of intent". "Actual efficiency gains" are often immeasurable, close enough to zero to call them zero. In the OP's case, unless the code has been profiled to find that the ++i is a bottleneck, the question of which one is faster is a waste of time and programmer thought units. –  Andy Lester Jul 22 '10 at 23:23
    
Difference in readability between ++i and i++ is only a matter of personal preference, but ++i clearly implies simpler operation than i++, despite result being equivalent for trivial cases and simple data types when optimizing compiler is involved. Therefore ++i is a winner for me, when specific properties of post-increment are not necessary. –  noop Jul 23 '10 at 23:17
    
You are saying what I am saying. It is more important to show intent and improve readability than to worry about "efficiency." –  Andy Lester Jul 26 '10 at 15:26
    
I still can't agree. If readability stands higher on your list of priorities then maybe your choice of programming language is wrong. C/C++ primary purpose is writing efficient code. –  noop Aug 8 '13 at 21:38

I always prefer pre-increment, however ...

I wanted to point out that even in the case of calling the operator++ function, the compiler will be able to optimize away the temporary if the function gets inlined. Since the operator++ is usually short and often implemented in the header, it is likely to get inlined.

So, for practical purposes, there likely isn't much of a difference between the performance of the two forms. However, I always prefer pre-increment since it seems better to directly express what I"m trying to say, rather than relying on the optimizer to figure it out.

Also, giving the optmizer less to do likely means the compiler runs faster.

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Your posting is C++-specific while the question is about C. In any case, your answer is wrong: for custom post-increment operators the compiler will generally not be able to produce as efficient code. –  Konrad Rudolph Oct 16 '08 at 11:31
    
He states "if the function gets inlined", and that makes his reasoning correct. –  Blaisorblade Jan 15 '09 at 0:21
    
Since C does not provide operator overloading, the pre vs. post question is largely uninteresting. The compiler can optimize away an unused temp using the same logic that is applied to any other unused, primitively computed value. See the selected answer for a sample. –  Andrew Eidsness Jan 16 '09 at 13:09

@Mark Even though the compiler is allowed to optimize away the (stack based) temporary copy of the variable and gcc (in recent versions) is doing so, doesn't mean all compilers will always do so.

I just tested it with the compilers we use in our current project and 3 out of 4 do not optimize it.

Never assume the compiler gets it right, especially if the possibly faster, but never slower code is as easy to read.

If you don't have a really stupid implementation of one of the operators in your code:

Alwas prefer ++i over i++.

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Just curious... why do you use 4 different C compilers in one project? Or in one team or one company, for that matter? –  Lawrence Dol Jan 18 '13 at 19:19
1  
When creating games for consoles every platform brings it's own compiler/toolchain. In a perfect world we could use gcc/clang/llvm for all targets, but in this world we have to put up with Microsoft, Intel, Metroworks, Sony, etc. –  Andreas Jan 26 '13 at 13:24

I can think of a situation where postfix is slower than prefix increment:

Imagine a processor with register A is used as accumulator and it's the only register used in many instructions (some small microcontrollers are actually like this).

Now imagine the following program and their translation into a hypothetical assembly:

Prefix increment:

a = ++b + c;

; increment b
LD    A, [&b]
INC   A
ST    A, [&b]

; add with c
ADD   A, [&c]

; store in a
ST    A, [&a]

Postfix increment:

a = b++ + c;

; load b
LD    A, [&b]

; add with c
ADD   A, [&c]

; store in a
ST    A, [&a]

; increment b
LD    A, [&b]
INC   A
ST    A, [&b]

Note how the value of b was forced to be reloaded. With prefix increment, the compiler can just increment the value and go ahead with using it, possibly avoid reloading it since the desired value is already in the register after the increment. However, with postfix increment, the compiler has to deal with two values, one the old and one the incremented value which as I show above results in one more memory access.

Of course, if the value of the increment is not used, such as a single i++; statement, the compiler can (and does) simply generate an increment instruction regardless of postfix or prefix usage.


As a side note, I'd like to mention that an expression in which there is a b++ cannot simply be converted to one with ++b without any additional effort (for example by adding a - 1). So comparing the two if they are part of some expression is not really valid. Often, where you use b++ inside an expression you cannot use ++b, so even if ++b were potentially more efficient, it would simply be wrong. Exception is of course if the expression is begging for it (for example a = b++ + 1; which can be changed to a = ++b;).

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First of all: The difference between i++ and ++i is neglegible in C.


To the details.

1. The well known C++ issue: ++i is faster

In C++, ++i is more efficient iff i is some kind of an object with an overloaded increment operator.

Why?
In ++i, the object is first incremented, and can subsequently passed as a const reference to any other function. This is not possible if the expression is foo(i++) because now the increment needs to be done before foo() is called, but the old value needs to be passed to foo(). Consequently, the compiler is forced to make a copy of i before it executes the increment operator on the original. The additional constructor/destructor calls are the bad part.

As noted above, this does not apply to fundamental types.

2. The little known fact: i++ may be faster

If no constructor/destructor needs to be called, which is always the case in C, ++i and i++ should be equally fast, right? No. They are virtually equally fast, but there may be small differences, which most other answerers got the wrong way around.

How can i++ be faster?
The point is data dependencies. If the value needs to be loaded from memory, two subsequent operations need to be done with it, incrementing it, and using it. With ++i, the incrementation needs to be done before the value can be used. With i++, the use does not depend on the increment, and the CPU may perform the use operation in parallel to the increment operation. The difference is at most one CPU cycle, so it is really neglegible, but it is there. And it is the other way round then many would expect.

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My C is a little rusty, so I apologize in advance. Speedwise, I can understand the results. But, I am confused as to how both files came out to the same MD5 hash. Maybe a for loop runs the same, but wouldn't the following 2 lines of code generate different assembly?

myArray[i++] = "hello";

vs

myArray[++i] = "hello";

The first one writes the value to the array, then increments i. The second increments i then writes to the array. I'm no assembly expert, but I just don't see how the same executable would be generated by these 2 different lines of code.

Just my two cents.

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@Jason Z The compiler optimization happens before the assembly is finished being generated, it would see that the i variable is not used anywhere else on the same line, so holding its value would be a waste, it probably effectively flips it to i++. But that's just a guess. I can't wait till one of my lecturers tries to say it's faster and I get to be the guy who corrects a theory with practical evidence. I can almost feel the animosity already ^_^ –  Tarks Aug 24 '08 at 14:35
    
"My C is a little rusty, so I apologize in advance." Nothing wrong with your C, but you didn't read the original question in full: "Is there a performance difference between i++ and ++i if the resulting value is not used?" Note the italics. In your example, the 'result' of i++/++i is used, but in the idiomatic for loop, the 'result' of the pre/postincrement operator isn't used so the compiler can do what it likes. –  Roddy Sep 1 '08 at 16:22
1  
in your example the code would be different, because you're using the value. the example where they were the same was only using the ++ for the increment, and not using the value returned by either. –  John Gardner Sep 20 '08 at 5:15
    
Fix: "the compiler would see that the return value of i++ is not used, so it would flip it to ++i". What you wrote is wrong also because you can't have i together with one of i++, i++ on the same line (statement), that result is undefined. –  Blaisorblade Jan 15 '09 at 0:18

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