715

When should I write the keyword inline for a function/method in C++?

After seeing some answers, some related questions:

  • When should I not write the keyword 'inline' for a function/method in C++?

  • When will the compiler not know when to make a function/method 'inline'?

  • Does it matter if an application is multithreaded when one writes 'inline' for a function/method?

6

16 Answers 16

1117

Oh man, one of my pet peeves.

inline is more like static or extern than a directive telling the compiler to inline your functions. extern, static, inline are linkage directives, used almost exclusively by the linker, not the compiler.

It is said that inline hints to the compiler that you think the function should be inlined. That may have been true in 1998, but a decade later the compiler needs no such hints. Not to mention humans are usually wrong when it comes to optimizing code, so most compilers flat out ignore the 'hint'.

  • static - the variable/function name cannot be used in other translation units. Linker needs to make sure it doesn't accidentally use a statically defined variable/function from another translation unit.

  • extern - use this variable/function name in this translation unit but don't complain if it isn't defined. The linker will sort it out and make sure all the code that tried to use some extern symbol has its address.

  • inline - this function will be defined in multiple translation units, don't worry about it. The linker needs to make sure all translation units use a single instance of the variable/function.

Note: Generally, declaring templates inline is pointless, as they have the linkage semantics of inline already. However, explicit specialization and instantiation of templates require inline to be used.


Specific answers to your questions:

  • When should I write the keyword 'inline' for a function/method in C++?

    Only when you want the function to be defined in a header. More exactly only when the function's definition can show up in multiple translation units. It's a good idea to define small (as in one liner) functions in the header file as it gives the compiler more information to work with while optimizing your code. It also increases compilation time.

  • When should I not write the keyword 'inline' for a function/method in C++?

    Don't add inline just because you think your code will run faster if the compiler inlines it.

  • When will the compiler not know when to make a function/method 'inline'?

    Generally, the compiler will be able to do this better than you. However, the compiler doesn't have the option to inline code if it doesn't have the function definition. In maximally optimized code usually all private methods are inlined whether you ask for it or not.

    As an aside to prevent inlining in GCC, use __attribute__(( noinline )), and in Visual Studio, use __declspec(noinline).

  • Does it matter if an application is multithreaded when one writes 'inline' for a function/method?

    Multithreading doesn't affect inlining in any way.

32
  • 233
    +1 Best description of inline I have seen in ... (forever). I will now rip you off and use this in all my explanations of the inline keyword. Nov 19, 2009 at 1:37
  • 7
    This answer confuses me a bit. You say all that about the compiler being able to inline / not inline things better. Then you say that you should put one liners / small functions in the header, and that the compiler can't inline code without the function definition. Aren't these a bit contradictory? Why not just put everything in the cpp file and let the compiler decide?
    – user673679
    Apr 3, 2013 at 17:22
  • 10
    The compiler will only inline function calls where the definition is available at the call site. Leaving all function in the cpp file would limit inlining to that file. I suggest defining small one liners inline in the .h as the cost to compilation speed is negligible and you're almost guaranteed the compiler will inline the call. My point about compiler inlining is that it is port of the black art of optimization, at which your compiler is much better than you are.
    – deft_code
    Apr 3, 2013 at 18:21
  • 11
    Whenever I read something to the account of the internet's cumulative knowledge I have to think of John Lawton's famous quote: The irony of the Information Age is that it has given new respectability to uninformed opinion. Sep 11, 2013 at 17:58
  • 9
    "so most compilers flat out ignore the 'hint'." This is patently false. At least Clang and GCC use the inline keyword as a hint for inlining: blog.tartanllama.xyz/inline-hints Mar 23, 2018 at 12:52
110

I'd like to contribute to all of the great answers in this thread with a convincing example to disperse any remaining misunderstanding.

Given two source files, such as:

  • inline111.cpp:

    #include <iostream>
    
    void bar();
    
    inline int fun() {
      return 111;
    }
    
    int main() {
      std::cout << "inline111: fun() = " << fun() << ", &fun = " << (void*) &fun;
      bar();
    }
    
  • inline222.cpp:

    #include <iostream>
    
    inline int fun() {
      return 222;
    }
    
    void bar() {
      std::cout << "inline222: fun() = " << fun() << ", &fun = " << (void*) &fun;
    }
    

  • Case A:

    Compile:

    g++ -std=c++11 inline111.cpp inline222.cpp
    

    Output:

    inline111: fun() = 111, &fun = 0x4029a0
    inline222: fun() = 111, &fun = 0x4029a0
    

    Discussion:

    1. Even thou you ought to have identical definitions of your inline functions, C++ compiler does not flag it if that is not the case (actually, due to separate compilation it has no ways to check it). It is your own duty to ensure this!

    2. Linker does not complain about One Definition Rule, as fun() is declared as inline. However, because inline111.cpp is the first translation unit (which actually calls fun()) processed by compiler, the compiler instantiates fun() upon its first call-encounter in inline111.cpp. If compiler decides not to expand fun() upon its call from anywhere else in your program (e.g. from inline222.cpp), the call to fun() will always be linked to its instance produced from inline111.cpp (the call to fun() inside inline222.cpp may also produce an instance in that translation unit, but it will remain unlinked). Indeed, that is evident from the identical &fun = 0x4029a0 print-outs.

    3. Finally, despite the inline suggestion to the compiler to actually expand the one-liner fun(), it ignores your suggestion completely, which is clear because fun() = 111 in both of the lines.


  • Case B:

    Compile (notice reverse order):

    g++ -std=c++11 inline222.cpp inline111.cpp
    

    Output:

    inline111: fun() = 222, &fun = 0x402980
    inline222: fun() = 222, &fun = 0x402980
    

    Discussion:

    1. This case asserts what have been discussed in Case A.

    2. Notice an important point, that if you comment out the actual call to fun() in inline222.cpp (e.g. comment out cout-statement in inline222.cpp completely) then, despite the compilation order of your translation units, fun() will be instantiated upon it's first call encounter in inline111.cpp, resulting in print-out for Case B as inline111: fun() = 111, &fun = 0x402980.


  • Case C:

    Compile (notice -O2):

    g++ -std=c++11 -O2 inline222.cpp inline111.cpp
    

    or

    g++ -std=c++11 -O2 inline111.cpp inline222.cpp
    

    Output:

    inline111: fun() = 111, &fun = 0x402900
    inline222: fun() = 222, &fun = 0x402900
    

    Discussion:

    1. As is described here, -O2 optimization encourages compiler to actually expand the functions that can be inlined (Notice also that -fno-inline is default without optimization options). As is evident from the outprint here, the fun() has actually been inline expanded (according to its definition in that particular translation unit), resulting in two different fun() print-outs. Despite this, there is still only one globally linked instance of fun() (as required by the standard), as is evident from identical &fun print-out.
4
  • 19
    Your answer is an illustrative post of why language makes such inline functions to be undefined behavior.
    – R Sahu
    May 29, 2018 at 15:50
  • You ought to also add cases where compiling and linking is separate, with each .cpp being its own translation unit. Preferably, add cases for -flto enabled/disabled.
    – syockit
    Nov 5, 2019 at 4:29
  • 3
    The C++ reference explicitly sais "If an inline function or variable (since C++17) with external linkage is defined differently in different translation units, the behavior is undefined.". So the stuff you wrote is GCC specific as it is a side effect of orchestration of the compilation and linkage processes. Also, notice that this might vary between versions. Feb 1, 2020 at 1:29
  • I get that inline tells the linker to allow symbol collisions (sticking to the symbol from the first translation unit), but why on earth is it not required to test the symbols for equivalence? The standard should require compilers to provide LTO-information for all inline functions and make such checks mandatory! Jun 25, 2020 at 12:50
30

You still need to explicitly inline your function when doing template specialization (if specialization is in .h file)

0
23

1) Nowadays, pretty much never. If it's a good idea to inline a function, the compiler will do it without your help.

2) Always. See #1.

(Edited to reflect that you broke your question into two questions...)

7
  • Yes. The inline is only a hint to the compiler, and it is free to ignore you. These days the compiler probably knows better than the programmer which functions are best to inline.
    – Mark Byers
    Nov 18, 2009 at 21:51
  • 1
    Yes, but it's less relevant - for a function to be inlined, it's body must be in the same compilation unit (for instance, in a header). That's less common in C programs. Nov 18, 2009 at 21:57
  • 1
    defining a non-member function template (aka non-static function template) does not require inline. See one definition rule(3.2/5).
    – deft_code
    Nov 18, 2009 at 23:42
  • 5
    -1: inline is still needed, for example to define a function in a header file (and that is required for inlining such a function in several compilation units).
    – Melebius
    Nov 18, 2014 at 11:25
  • 3
    @Étienne that's implementation-specific. Per standard, there's One Definition Rule, which means here that if you naively include the function definition in multiple translation units, you'll get an error. But if that function has inline specifier, its instances are automagically collapsed into one by the linker, and ODR isn't used.
    – Ruslan
    Nov 22, 2016 at 14:11
15

When should I not write the keyword 'inline' for a function/method in C++?

If the function is declared in the header and defined in the .cpp file, you should not write the keyword.

When will the the compiler not know when to make a function/method 'inline'?

There is no such situation. The compiler cannot make a function inline. All it can do is to inline some or all calls to the function. It can't do so if it hasn't got the code of the function (in that case the linker needs to do it if it is able to do so).

Does it matter if an application is multithreaded when one writes 'inline' for a function/method?

No, that does not matter at all.

4
  • There are cases where it is appropriate to use inline in a .cpp file. E.g. applying optimizations to code that is entirely implementation specific. Apr 9, 2020 at 1:18
  • @RobinDavies updated answer. It seems you misunderstood what I wanted to write. Apr 9, 2020 at 11:55
  • @JohannesSchaub-litb If the function is declared in the header and defined in the .cpp file, then you should not use the inline keyword. but deft_code (967 upvotes and Accepted answer) mention opposite to that you should only use inline keyword when the function's definition can show up in multiple translation units so I checked it by declaring function in header file with keyword inline and defining it in .cpp file, it gives an error undefined reference. so you are right. Now also you mentioned,..........continue in next comment Apr 22, 2021 at 13:29
  • @JohannesSchaub-litb ........ code of function in multiple translation unit is not available to compiler so it can't make them inline so it's linkers job . in this sense, deft_code says that so you should use inline keyword so it gives compiler more info. to work with an optimizing code so his wording also makes sense here but when I try to use in code as mentioned early it gives error . so I feel both of your statements are opposite to each other but both of them makes sense but when I check practically your statements is true , so can you please put some light on this. Apr 22, 2021 at 13:31
7
  • When will the the compiler not know when to make a function/method 'inline'?

This depends on the compiler used. Do not blindly trust that nowadays compilers know better then humans how to inline and you should never use it for performance reasons, because it's linkage directive rather than optimization hint. While I agree that ideologically are these arguments correct encountering reality might be a different thing.

After reading multiple threads around I tried out of curiosity the effects of inline on the code I'm just working and the results were that I got measurable speedup for GCC and no speed up for Intel compiler.

(More detail: math simulations with few critical functions defined outside class, GCC 4.6.3 (g++ -O3), ICC 13.1.0 (icpc -O3); adding inline to critical points caused +6% speedup with GCC code).

So if you qualify GCC 4.6 as a modern compiler the result is that inline directive still matters if you write CPU intensive tasks and know where exactly is the bottleneck.

3
  • 6
    I'd like to see more evidence to back up your claims. Please provide code you are testing with as well as assembler output with and without inline keyword. Any number of things could have given you performance benefits. May 13, 2014 at 20:59
  • 2
    Finally someone who doesn't only repeat what others say, but does actually verify those statements. Gcc does indeed still consider the inline keyword as a hint (I think clang ignores it completely).
    – MikeMB
    Dec 5, 2016 at 8:21
  • @void.pointer: Why is this so hard to believe? If optimizers were perfect already, then new versions couldn't improve the program performance. But they regularly do.
    – MikeMB
    Dec 5, 2016 at 8:23
2

In reality, pretty much never. All you're doing is suggesting that the compiler make a given function inline (e.g., replace all calls to this function /w its body). There are no guarantees, of course: the compiler may ignore the directive.

The compiler will generally do a good job of detecting + optimizing things like this.

2
  • 9
    The problem is that inline has a semantic difference in C++ (e.g. in the way multiple definitions are treated), which is important in some cases (e.g. templates). Nov 18, 2009 at 22:55
  • 4
    inline is used to resolve cases where a symbol has multiple definitions. Templates however are already handled by the language. One exception is a specialized template function that doesn't have any template paramters anymore (template<>). These are treated more like functions than templates and so need the inline keyword in order to link.
    – deft_code
    Nov 18, 2009 at 23:47
2

gcc by default does not inline any functions when compiling without optimization enabled. I don't know about visual studio – deft_code

I checked this for Visual Studio 9 (15.00.30729.01) by compiling with /FAcs and looking at the assembly code: The compiler produced calls to member functions without optimization enabled in debug mode. Even if the function is marked with __forceinline, no inline runtime code is produced.

1
  • 1
    Enable /Wall to be told about which functions where marked inline but didn't actually get inlined
    – paulm
    Jan 2, 2014 at 15:17
1

F.5: If a function is very small and time-critical, declare it inline

Reason: Some optimizers are good at inlining without hints from the programmer, but don’t rely on it. Measure! Over the last 40 years or so, we have been promised compilers that can inline better than humans without hints from humans. We are still waiting. Specifying inline (explicitly, or implicitly when writing member functions inside a class definition) encourages the compiler to do a better job.

Source: https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines.html#Rf-inline

For examples and exceptions, go to the Source (see above).

1

One use case might occur on inheritance. For example, if all below cases are true:

  • you have a base class of some class
  • the base class needs to be abstract
  • the base class has no pure virtual method other than destructor
  • you don't want to create cpp file for the base class because in vain

then you have to define the destructor; otherwise, you will have some undefined referance linker errors. Moreover, you have to do not only define but also to define the destructor with inline keyword; otherwise, you will have multiple definition linker errors.

This may happen for some helper classes that contains only static methods or writing base exception classes etc.

Let's give an example:

Base.h:

class Base {
public:
    Base(SomeElementType someElement) noexcept : _someElement(std::move(someElement)) {}

    virtual ~Base() = 0;

protected:
    SomeElementType _someElement;
}

inline Base::~Base() = default;

Derived1.h:

#include "Base.h"

class Derived1 : public Base {
public:
    Derived1(SomeElementType someElement) noexcept : Base(std::move(someElement)) {}

    void DoSomething1() const;
}

Derived1.cpp:

#include "Derived1.h"

void Derived1::DoSomething1() const {
    // use _someElement 
}

Derived2.h:

#include "Base.h"

class Derived2 : public Base {
public:
    Derived2(SomeElementType someElement) noexcept : Base(std::move(someElement)) {}

    void DoSomething2() const;
}

Derived2.cpp:

#include "Derived2.h"

void Derived2::DoSomething2() const {
    // use _someElement 
}

Generally, abstract classes have some pure virtual methods other than constructor or destructor. So, you didn't have to seperate decleration and definition of virtual destructor of the base class, you could just write virtual ~Base() = default; on class decleration. However, in our case it's not like that.

As far as I know, MSVC allow you to write something like that on class decleration: virtual ~Base() = 0 {}. So you don't need to seperate decleration and definition with inline keyword. But it will only work with MSVC compiler.

Real world example:

BaseException.h:

#pragma once

#include <string>

class BaseException : public std::exception {
public:
    BaseException(std::string message) noexcept : message(std::move(message)) {}
    virtual char const* what() const noexcept { return message.c_str(); }

    virtual ~BaseException() = 0;

private:
    std::string message;
};

inline BaseException::~BaseException() = default;

SomeException.h:

#pragma once

#include "BaseException.h"

class SomeException : public BaseException {
public:
    SomeException(std::string message) noexcept : BaseException(std::move(message)) {}
};

SomeOtherException.h:

#pragma once

#include "BaseException.h"

class SomeOtherException : public BaseException {
public:
    SomeOtherException(std::string message) noexcept : BaseException(std::move(message)) {}
};

main.cpp:

#include <SomeException.h>
#include <SomeOtherException.h>

#include <iostream>

using namespace std;

static int DoSomething(int argc) {
    try {
        switch (argc) {
        case 0:
            throw SomeException("some");
        case 1:
            throw SomeOtherException("some other");
        default:
            return 0;
        }
    }
    catch (const exception& ex) {
        cout << ex.what() << endl;
        return 1;
    }
}

int main(int argc, char**) {
    return DoSomething(argc);
}
0

Unless you are writing a library or have special reasons, you can forget about inline and use link-time optimization instead. It removes the requirement that a function definition must be in a header for it to be considered for inlining across compilation units, which is precisely what inline allows.

(But see Is there any reason why not to use link time optimization?)

0

C++ inline is totally different to C inline.

#include <iostream>
extern inline int i[];
int i [5];
struct c {
  int function (){return 1;} // implicitly inline
  static inline int j = 3; // explicitly inline
  static int k; // without inline, a static member has to be defined out of line
  static int f (){return 1;} // but a static method does not // implicitly inline
};

extern inline int b;
int b=3;
int c::k = 3; // when a static member is defined out of line it cannot have a static
              // specifier and if it doesn't have an `inline` specifier in the
              // declaration or on the definition then it is not inline and always
              // emits a strong global symbol in the translation unit

int main() {
  c j;
  std::cout << i;
}

inline on its own affects the compiler, assembler and the linker. It is a directive to the compiler saying only emit a symbol for this function/data if it's used in the translation unit, and if it is, then like class methods, tell the assembler to store them in the section .section .text.c::function(),"axG",@progbits,c::function(),comdat or .section .bss.i,"awG",@nobits,i,comdat for unitialised data or .section .data.b,"awG",@progbits,b,comdat for initialised data. Template instantiations also go in their own comdat groups.

This follows .section name, "flags"MG, @type, entsize, GroupName[, linkage]. For instance, the section name is .text.c::function(). axG means the section is allocatable, executable and in a group i.e. a group name will be specified (and there is no M flag so no entsize will be specified); @progbits means the section contains data and isn't blank; c::function() is the group name and the group has comdat linkage meaning that in all object files, all sections encountered with this group name tagged with comdat will be removed from the final executable except for 1 i.e. the compiler makes sure that there is only one definition in the translation unit and then tells the assembler to put it in its own group in the object file (1 section in 1 group) and then the linker will make sure that if any object files have a group with the same name, then only include one in the final .exe. The difference between inline and not using inline is now visible to the assembler and as a result the linker, because it's not stored in the regular .data or .text etc by the assembler due to their directives. Only inline symbols with external linkage are given external comdat linkage like this -- static linkage (local) symbols do not need to go in comdat groups.

inline on a non-static method declaration in a class makes the method inline if it is defined out-of-line, this will prevent the method being emitted in the translation unit if it is not referenced in the translation unit. The same effect is achieved by putting inline on the out-of-line definition. When a method is defined out-of-line without an inline specifier and the declaration in the class is not inline then it will emit a symbol for the method in the translation unit at all times because it will have external linkage rather than external comdat linkage. If the method is defined in the class then it is implicitly inline, which gives it external comdat linkage rather than external linkage.

static inline on a member in a class (as opposed to method) makes it a static member (which does not refer to its linkage -- it has the linkage of its class which may be extern). static inline also allows static members of the class to be defined inside the class instead of needing to be declared in the class and then defined out-of-line (without static in the definition, which wasn't allowed without -fpermissive). *static inline* also makes the members inline and not static inline -- inline means that the definition is only emitted if it is referenced in the translation unit. Previously you had to specify inline on the out-of-line definition to make the member inline.

Seeing as static methods can be defined in the class, static inline has no effect on the static method defined in the class, which always has external linkage, is a static method and is inline. If it is defined out of line then inline must be used to make it inline (i.e. to give to external comdat linkage rather than just external linkage), and static still can't be used.

static inline at file scope only affects the compiler. It means to the compiler: only emit a symbol for this function/data if it's used in the translation unit and do so as a regular static symbol (store in.text /.data without .globl directive). To the assembler there is now no difference between static and static inline. Like the other forms of inline, it cannot be used on a class, which is a type, but can be used on an object of the type of that class. This form of static inline also cannot be used on members or methods of a function, where it will always be treated inline as the static means something else in a class (it means that the class is acting as a scope rather than it being a member of or method to be used on an object).

extern inline is a declaration that means you must define this symbol in the translation unit if it is referenced or throw compiler error; if it's defined then treat it as a regular inline and to the assembler and linker there will be no difference between extern inline and inline, so this is a compiler guard only.

extern inline int i[];
extern int i[]; //allowed repetition of declaration with incomplete type, inherits inline property
extern int i[5]; //declaration now has complete type
extern int i[5]; //allowed redeclaration if it is the same complete type or has not yet been completed
extern int i[6]; //error, redeclaration with different complete type
int i[5]; //definition, must have complete type and same complete type as the declaration if there is a declaration with a complete type

The whole of the above without the error line collapses to inline int i[5]. Obviously if you did extern inline int i[] = {5}; then extern would be ignored due to the explicit definition through assignment.

I think the reason that static is not allowed on a static out-of-line definition without -fpermissive is because it implies that the static refers to static linkage, because it's not immediately obvious to the programmer that it is a member of a class or whether that class has , where the static means something different. -fpermissive ignores the static specifier on the out-of-line definition and it means nothing. In the case of a simple integer, k can't be defined out of a namespace, if c were a namespace, but if k were a function, then there would be no way of visibly telling from the line of code whether it is an out of line definition of a function in a namespace with static linkage, or an out-of-line definition of a static member with external linkage, and may give the wrong impression to the programmer / reader of the code.

For local classes, inline on a member / method will result in a compiler error and members and methods have no linkage.

For inline on a namespace, see this and this

-1

Inline keyword requests the compiler to replace the function call with the body of the function ,it first evaluates the expression and then passed.It reduces the function call overhead as there is no need to store the return address and stack memory is not required for function arguments.

When to use:

  • To Improve performance
  • To reduce call overhead .
  • As it's just a request to the compiler, certain functions won't be inlined *large functions
    • functions having too many conditional arguments
    • recursive code and code with loops etc.
1
  • 1
    It may benefit you to know that this isn't actually the case. The optimisation level -O0 through - Ofast is what determines whether a function is inlined or not. Inline on regular compilation (-O0) will not inline a function regardless of whether you use inline or not in C and C++. C Inline: stackoverflow.com/a/62287072/7194773 C++ inline: stackoverflow.com/a/62230963/7194773 Jun 9, 2020 at 16:14
-2

You want to put it in the very beginning, before return type. But most Compilers ignore it. If it's defined, and it has a smaller block of code, most compilers consider it inline anyway.

-2

When developing and debugging code, leave inline out. It complicates debugging.

The major reason for adding them is to help optimize the generated code. Typically this trades increased code space for speed, but sometimes inline saves both code space and execution time.

Expending this kind of thought about performance optimization before algorithm completion is premature optimization.

5
  • 13
    inline functions are typically not inlined unless compiling with optimizations, so they do not affect debugging in any way. Remember that it's a hint, not a demand. Nov 18, 2009 at 22:54
  • 3
    gcc by default does not inline any functions when compiling without optimization enabled. I don't know about visual studio
    – deft_code
    Nov 18, 2009 at 23:07
  • I worked on an enormous g++ project which had debugging enabled. Maybe other options prevented it, but the inline functions were inlined. It was impossible to set a meaningful breakpoint in them.
    – wallyk
    Nov 18, 2009 at 23:19
  • 2
    enabling debugging doesn't stop inlining in gcc. If any optimization where enabled (-O1 or greater), then gcc will try to inline the most obvious cases. Traditionally GDB has had a hard time with breakpoints and constructors especially inline constructors. But, that has been fixed in recent versions (at least 6.7, maybe sooner).
    – deft_code
    Nov 18, 2009 at 23:51
  • 2
    Adding inline will do nothing to improve the code on a modern compiler, which can figure out whether to inline or not on its own. Nov 20, 2009 at 22:22
-3

When one should inline :

1.When one want to avoid overhead of things happening when function is called like parameter passing , control transfer, control return etc.

2.The function should be small,frequently called and making inline is really advantageous since as per 80-20 rule,try to make those function inline which has major impact on program performance.

As we know that inline is just a request to compiler similar to register and it will cost you at Object code size.

2
  • "inline is just a request to compiler similar to register" They're similar because neither are requests or have anything to do with optimisation. inline has lost its status as an optimisation hint, and most compilers only use it to make allowances for multiple definitions - as IMO they should. More so, since C++11, register has fully been deprecated for its prior meaning of 'I know better than the compiler how to optimise': it's now just a reserved word with no current meaning. Oct 4, 2016 at 20:20
  • @underscore_d: Gcc still listens to inline to some degree.
    – MikeMB
    Dec 5, 2016 at 8:27

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