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Ever since I realized many years ago, that this doesn't produce an error by default, (in gcc at least) I've always wondered why?

I understand that you can issue compiler flags to produce a warning, but shouldn't it always be an error? Why does it make sense for a non-void function not returning value to be valid?

An example as requested in the comments:

#include <stdio.h>
int stringSize()

int main()
    char cstring[5];
    printf( "the last char is: %c\n", cstring[stringSize()-1] ); 
    return 0;


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Alternatively, I treat all warnings however trivial like errors, and I activate all the warnings I can (with local deactivation if necessary... but then it's clear in the code why). –  Matthieu M. Oct 23 '09 at 10:33
-Werror=return-type will treat just that warning as an error. I just ignored the warning and the couple of minutes of frustration tracking down an invalid this pointer lead me here and to this conclusion. –  jozxyqk Nov 4 '13 at 7:46

8 Answers 8

up vote 90 down vote accepted

C99 and C++ standards don't require functions to return a value. The return with no value in a value-returning function will be defined (to 0) only in the main function.

The rationale is that checking if every code path returns a value is quite difficult, and return value could be set with embedded assembler or other tricky methods.

From n2960 draft:

§ 6.6.3/2

Flowing off the end of a function is equivalent to a return with no value; this results in undefined behavior in a value-returning function.

§ 3.6.1/5

If control reaches the end of main without encountering a return statement, the effect is that of executing
return 0;

gcc will give you a warning if you call it with -Wreturn-type option.

-Wreturn-type Warn whenever a function is defined with a return-type that defaults to int. Also warn about any return statement with no return-value in a function whose return-type is not void (falling off the end of the function body is considered returning without a value), and about a return statement with an expression in a function whose return-type is void.

This warning is enabled by -Wall.

Just as a curiosity. Look what this code does (1):

#include <iostream>

int foo() {
   int a = 5;
   int b = a + 1;

int main() { std::cout << foo() << std::endl; } // will print 6 (2)

(1) This is calling convention and architecture dependent.
(2) The return value is the result of last expression evaluation, stored in the eax register.

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I'll buy the code path checking argument. –  Catskul Oct 22 '09 at 23:05
I'm picking this one because I feel like it's the most concise. –  Catskul Oct 23 '09 at 18:04
I'd be wary of calling undefined behaviour "allowed", though admittedly I'd also be wrong to call it "prohibited". Not being an error and not requiring a diagnostic are not quite the same as "allowed". At the very least, your answer reads a bit like you're saying it's OK to do, which largely it is not. –  Lightness Races in Orbit Jul 15 '11 at 14:26
@Catskul, yes and no. Statically typed and/or compiled languages do lots of things that you would probably consider "prohibitively expensive", but because they only do it once, at compile time, they have negligible expense. Even having said that, I don't see why identifying exit points of a function needs to be super-linear: You just traverse the AST of the function and look for return or exit calls. That's linear time, which is decidedly efficient. –  BlueBomber Mar 28 '13 at 18:43
@supercat: A super-intelligent compiler will not warn or error in such a case, but -- again -- this is essentially incalculable for the general case, so you're stuck with a general rule of thumb. If you know, though, that your end-of-function will never be reached, then you are so far from the semantics of traditional function handling that, yes, you can go ahead and do this and know that it's safe. Frankly, you're a layer below C++ at that point and, as such, all its guarantees are moot anyway. –  Lightness Races in Orbit Sep 6 '13 at 23:03

gcc does not by default check that all code paths return a value because in general this cannot be done. It assumes you know what you are doing. Consider a common example using enumerations:

Color getColor(Suit suit) {
    switch (suit) {
        case HEARTS: case DIAMONDS: return RED;
        case SPADES: case CLUBS:    return BLACK;

    // Error, no return?

You the programmer know that, barring a bug, this method always returns a color. gcc trusts that you know what you are doing so it doesn't force you to put a return at the bottom of the function.

javac, on the other hand, tries to verify that all code paths return a value and throws an error if it cannot prove that they all do. This error is mandated by the Java language specification. Note that sometimes it is wrong and you have to put in an unnecessary return statement.

char getChoice() {
    int ch = read();

    if (ch == -1 || ch == 'q') {
    else {
        return (char) ch;

    // Cannot reach here, but still an error.

It's a philosophical difference. C and C++ are more permissive and trusting languages than Java or C# and so some errors in the newer languages are warnings in C/C++ and some warnings are ignored or off by default.

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If javac actually checks code-paths wouldn't it see that you could never reach that point? –  Chris Lutz Oct 22 '09 at 21:47
In the first one it doesn't give you credit for covering all of the enum cases (you need a default case or a return after the switch), and in the second one it doesn't know that System.exit() never returns. –  John Kugelman Oct 22 '09 at 22:14
It seems straightforward for javac (an otherwise powerful compiler) to know that System.exit() never returns. I looked it up (…), and the docs just say it "never normally returns". I wonder what that means... –  Paul Biggar Oct 23 '09 at 10:11
@Paul: it means they didn't have a goodeditor. All other languages say "never returns normally" -- i.e., "doesn't return using the normal return mechanism." –  Max Lybbert Oct 23 '09 at 20:07
@JohnKugelman, I agree with your assessment of the first one, but I think the "problem" with the second example is more subtle: If the last statement in a sequence is an if/else (like it is here), all that is required for safety is to make sure the branches both return the same (and correct) type. If one branch returns the return value of a function call (as is the case for the if-branch here), that function doesn't have to be guaranteed to terminate for the program to pass compilation. –  BlueBomber Mar 11 '13 at 5:44

You mean, why flowing off the end of a value-returning function (i.e. exiting without an explicit return) is not an error?

Firstly, in C whether a function returns something meaningful or not is only critical when the executing code actually uses the returned value. Maybe the language didn't want to force you to return anything when you know that you are not going to use it anyway most of the time.

Secondly, maybe the language specification did not want to force the compiler authors to detect and verify all possible control paths for the presence of an explicit return (although this is not difficult to do).

Note also, that C and C++ differ in their definitions of the behavior in this case. In C++ just flowing off the end of a value returning function is always undefined behavior (regardless of whether the function's result is used by the calling code). In C this causes undefined behavior only if the calling code tries to use the returned value.

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+1 but can't C++ omit return statements from the end of main()? –  Chris Lutz Oct 22 '09 at 21:36
@Chris Lutz: Yes, main is special in that regard. –  AnT Oct 22 '09 at 21:40

Under what circumstances doesn't it produce an error? If it declares a return type and doesn't return something, it sounds like an error to me.

The one exception I can think of is the main() function, which doesn't need a return statement at all (at least in C++; I don't have either of the C standards handy). If there is no return, it will act as if return 0; is the last statement.

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main() needs a return in C. –  Chris Lutz Oct 22 '09 at 21:30
@Jefromi: The OP is asking about a non-void function without a return <value>; statement –  Bill Oct 22 '09 at 21:36
main automatically returns 0 in C and C++. C89 needs an explicit return. –  Johannes Schaub - litb Oct 22 '09 at 21:37
@Chris: in C99 there's an implicit return 0; at the end of main() (and main() only). But it's good style to add return 0; anyway. –  pmg Oct 22 '09 at 21:56

Sounds like you need to turn up your compiler warnings:

$ gcc -Wall -Wextra -Werror -x c -
int main(void) { return; }
cc1: warnings being treated as errors
<stdin>: In function ‘main’:
<stdin>:1: warning: ‘return’ with no value, in function returning non-void
<stdin>:1: warning: control reaches end of non-void function
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Saying "turn on -Werror" is a non-answer. Clearly there is a difference in severity between issues classified as warnings and errors, and gcc treats this one as the less severe class. –  Jefromi Oct 22 '09 at 21:30
@Jefromi: From the pure language point of view, there's no difference between warnings and errors. The compiler is only required to issue a "disgnostic message". There's no requirement to stop compilation or call something "an eror" and something else "a warning". One a diagnostic message is issued (or any kind), it is entirely up to you to make a decision. –  AnT Oct 22 '09 at 21:38
Then again, the issue in question causes UB. Compilers are not required to catch UB at all. –  AnT Oct 22 '09 at 21:39
In 6.9.1/12 in n1256 it says "If the } that terminates a function is reached, and the value of the function call is used by the caller, the behavior is undefined." –  Johannes Schaub - litb Oct 22 '09 at 23:15
@Chris Lutz: I don't see it. It is a constraint violation to use an explicit empty return; in a non-void function, and it is a constraint violation to use return <value>; in a void function. But that's, I believe, not the topic. The OP, as I understood it, is about exiting a non-void function without a return (just allowing control to flow off the end of the function). It is not a constraint violation, AFAIK. The standard just says it is always UB in C++ and sometimes UB in C. –  AnT Oct 22 '09 at 23:18

I believe this is because of legacy code (C never required return statement so did C++). There is probably huge code base relying on that "feature". But at least there is -Werror=return-type flag on many compilers (including gcc and clang).

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It is a constraint violation in c99, but not in c89. Contrast:

c89: The return statement


A return statement with an expression shall not appear in a function whose return type is void .

c99: The return statement


A return statement with an expression shall not appear in a function whose return type is void. A return statement without an expression shall only appear in a function whose return type is void.

Even in --std=c99 mode, gcc will only throw a warning (although without needing to enable additional -W flags, as is required by default or in c89/90).

Edit to add that in c89, "reaching the } that terminates a function is equivalent to executing a return statement without an expression" ( However, in c99 the behavior is undefined (6.9.1).

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Note that this only covers explicit return statements. It doesn't cover falling off the end of a function without returning a value. –  John Kugelman Oct 22 '09 at 22:21
Note that C99 misses "reaching the } that terminates a function is equivalent to executing a return statement without an expression" so it's not made a constraint violation, and thus no diagnostic is required. –  Johannes Schaub - litb Oct 22 '09 at 23:24

In C it's a constraint violation. A conforming compiler must emit a diagnostic when trying to compile code that returns something from a void function or returns nothing from a non-void function. The return statement
1 A return statement with an expression shall not appear in a function whose return type is void. A return statement without an expression shall only appear in a function whose return type is void.

share|improve this answer Diagnostics $1 A conforming implementation shall produce at least one diagnostic message (identified in an implementation-defined manner) if a preprocessing translation unit or translation unit contains a violation of any syntax rule or constraint, even if the behavior is also explicitly specified as undefined or implementation-defined. Diagnostic messages need not be produced in other circumstances. –  pmg Oct 22 '09 at 21:41
Yeah, I removed my comment when AndreyT agreed with you, assuming it was in some other part of the standard. Nice to know. –  Chris Lutz Oct 22 '09 at 21:44
1 also doesn't say anything about non-void functions without return statements at the end of the block. –  james woodyatt Oct 22 '09 at 21:44
This paragraph does only apply to return statements. Not to cases where you flow off a function body. See 6.9.1/12 for the latter case. –  Johannes Schaub - litb Oct 22 '09 at 23:16
Thanks litb. I have been looking for that for ages! –  pmg Oct 22 '09 at 23:26

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