Is it safe to use c_str() on a temporary string? The Next CEO of Stack OverflowIs a string literal in c++ created in static memory?string and const char* and .c_str()?How do I iterate over the words of a string?Why is 'this' a pointer and not a reference?Why does std::ends cause string comparison to fail?Return value for a << operator function of a custom string class in C++Returning value from a functionconst qualifier for a string literalEasiest way to convert int to string in C++How can I convert a std::basic_string type to an array of char type?C++ Concatenating const char * with string, only const char * printsSystemC sc_uint from String Object

Why do professional authors make "consistency" mistakes? And how to avoid them?

MAZDA 3 2006 (UK) - poor acceleration then takes off at 3250 revs

What happens if you roll doubles 3 times then land on "Go to jail?"

Error when running sfdx update to 7.1.3 then sfdx push errors

When did Lisp start using symbols for arithmetic?

How to write the block matrix in LaTex?

Why didn't Theresa May consult with Parliament before negotiating a deal with the EU?

How to make a software documentation "officially" citable?

What is the purpose of the Evocation wizard's Potent Cantrip feature?

When airplanes disconnect from a tanker during air to air refueling, why do they bank so sharply to the right?

How do I construct this japanese bowl?

What makes a siege story/plot interesting?

Grabbing quick drinks

Why did we only see the N-1 starfighters in one film?

Can I equip Skullclamp on a creature I am sacrificing?

Does the Brexit deal have to be agreed by both Houses?

Whats the best way to handle refactoring a big file?

How to be diplomatic in refusing to write code that breaches the privacy of our users

Fastest way to shutdown Ubuntu Mate 18.10

Is it okay to store user locations?

Putting a 2D region plot under a 3D plot

Implement the Thanos sorting algorithm

Why doesn't a table tennis ball float on the surface? How do we calculate buoyancy here?

Visit to the USA with ESTA approved before trip to Iran



Is it safe to use c_str() on a temporary string?



The Next CEO of Stack OverflowIs a string literal in c++ created in static memory?string and const char* and .c_str()?How do I iterate over the words of a string?Why is 'this' a pointer and not a reference?Why does std::ends cause string comparison to fail?Return value for a << operator function of a custom string class in C++Returning value from a functionconst qualifier for a string literalEasiest way to convert int to string in C++How can I convert a std::basic_string type to an array of char type?C++ Concatenating const char * with string, only const char * printsSystemC sc_uint from String Object










6















#include <iostream>

std::string get_data()

return "Hello";


int main()

const char* data = get_data().c_str();
std::cout << data << "n";
return 0;



"Hello" is printing on my machine; however, I am led to believe that this behavior is unspecified i.e. implementation-specific. Am I correct or will it always print "Hello", judging that the returned string is immutable and as such qualified as something that is constant? Thanks in advance!










share|improve this question









New contributor




Aknin Abdo is a new contributor to this site. Take care in asking for clarification, commenting, and answering.
Check out our Code of Conduct.















  • 1





    Where does that string that gets returned go after c_str() is called and returns a pointer to some data?

    – tadman
    2 hours ago






  • 2





    stackoverflow.com/questions/23464504/…

    – Wyck
    2 hours ago






  • 2





    Probably not a duplicate but helpful: stackoverflow.com/questions/349025/…. Also your interview question is missing #include <string> so technically it would be a compiler error ;)

    – Tas
    2 hours ago






  • 1





    I'm a bit surprised that the documentation for std::string::c_str doesn't mention destruction of the string as grounds for the returned pointer being invalidated (unless you consider the destructor to be a non-const member function). I think many people coming from a C background would benefit from having this written explicitly

    – alter igel
    2 hours ago







  • 1





    @Tas: io-streams implement the shift-operators including overloads on basic_string ,so it needs its definition which requires it to include <string>. So it can't be a compiler error.

    – engf-010
    2 hours ago















6















#include <iostream>

std::string get_data()

return "Hello";


int main()

const char* data = get_data().c_str();
std::cout << data << "n";
return 0;



"Hello" is printing on my machine; however, I am led to believe that this behavior is unspecified i.e. implementation-specific. Am I correct or will it always print "Hello", judging that the returned string is immutable and as such qualified as something that is constant? Thanks in advance!










share|improve this question









New contributor




Aknin Abdo is a new contributor to this site. Take care in asking for clarification, commenting, and answering.
Check out our Code of Conduct.















  • 1





    Where does that string that gets returned go after c_str() is called and returns a pointer to some data?

    – tadman
    2 hours ago






  • 2





    stackoverflow.com/questions/23464504/…

    – Wyck
    2 hours ago






  • 2





    Probably not a duplicate but helpful: stackoverflow.com/questions/349025/…. Also your interview question is missing #include <string> so technically it would be a compiler error ;)

    – Tas
    2 hours ago






  • 1





    I'm a bit surprised that the documentation for std::string::c_str doesn't mention destruction of the string as grounds for the returned pointer being invalidated (unless you consider the destructor to be a non-const member function). I think many people coming from a C background would benefit from having this written explicitly

    – alter igel
    2 hours ago







  • 1





    @Tas: io-streams implement the shift-operators including overloads on basic_string ,so it needs its definition which requires it to include <string>. So it can't be a compiler error.

    – engf-010
    2 hours ago













6












6








6








#include <iostream>

std::string get_data()

return "Hello";


int main()

const char* data = get_data().c_str();
std::cout << data << "n";
return 0;



"Hello" is printing on my machine; however, I am led to believe that this behavior is unspecified i.e. implementation-specific. Am I correct or will it always print "Hello", judging that the returned string is immutable and as such qualified as something that is constant? Thanks in advance!










share|improve this question









New contributor




Aknin Abdo is a new contributor to this site. Take care in asking for clarification, commenting, and answering.
Check out our Code of Conduct.












#include <iostream>

std::string get_data()

return "Hello";


int main()

const char* data = get_data().c_str();
std::cout << data << "n";
return 0;



"Hello" is printing on my machine; however, I am led to believe that this behavior is unspecified i.e. implementation-specific. Am I correct or will it always print "Hello", judging that the returned string is immutable and as such qualified as something that is constant? Thanks in advance!







c++






share|improve this question









New contributor




Aknin Abdo is a new contributor to this site. Take care in asking for clarification, commenting, and answering.
Check out our Code of Conduct.











share|improve this question









New contributor




Aknin Abdo is a new contributor to this site. Take care in asking for clarification, commenting, and answering.
Check out our Code of Conduct.









share|improve this question




share|improve this question








edited 2 hours ago









alter igel

3,44711230




3,44711230






New contributor




Aknin Abdo is a new contributor to this site. Take care in asking for clarification, commenting, and answering.
Check out our Code of Conduct.









asked 2 hours ago









Aknin AbdoAknin Abdo

341




341




New contributor




Aknin Abdo is a new contributor to this site. Take care in asking for clarification, commenting, and answering.
Check out our Code of Conduct.





New contributor





Aknin Abdo is a new contributor to this site. Take care in asking for clarification, commenting, and answering.
Check out our Code of Conduct.






Aknin Abdo is a new contributor to this site. Take care in asking for clarification, commenting, and answering.
Check out our Code of Conduct.







  • 1





    Where does that string that gets returned go after c_str() is called and returns a pointer to some data?

    – tadman
    2 hours ago






  • 2





    stackoverflow.com/questions/23464504/…

    – Wyck
    2 hours ago






  • 2





    Probably not a duplicate but helpful: stackoverflow.com/questions/349025/…. Also your interview question is missing #include <string> so technically it would be a compiler error ;)

    – Tas
    2 hours ago






  • 1





    I'm a bit surprised that the documentation for std::string::c_str doesn't mention destruction of the string as grounds for the returned pointer being invalidated (unless you consider the destructor to be a non-const member function). I think many people coming from a C background would benefit from having this written explicitly

    – alter igel
    2 hours ago







  • 1





    @Tas: io-streams implement the shift-operators including overloads on basic_string ,so it needs its definition which requires it to include <string>. So it can't be a compiler error.

    – engf-010
    2 hours ago












  • 1





    Where does that string that gets returned go after c_str() is called and returns a pointer to some data?

    – tadman
    2 hours ago






  • 2





    stackoverflow.com/questions/23464504/…

    – Wyck
    2 hours ago






  • 2





    Probably not a duplicate but helpful: stackoverflow.com/questions/349025/…. Also your interview question is missing #include <string> so technically it would be a compiler error ;)

    – Tas
    2 hours ago






  • 1





    I'm a bit surprised that the documentation for std::string::c_str doesn't mention destruction of the string as grounds for the returned pointer being invalidated (unless you consider the destructor to be a non-const member function). I think many people coming from a C background would benefit from having this written explicitly

    – alter igel
    2 hours ago







  • 1





    @Tas: io-streams implement the shift-operators including overloads on basic_string ,so it needs its definition which requires it to include <string>. So it can't be a compiler error.

    – engf-010
    2 hours ago







1




1





Where does that string that gets returned go after c_str() is called and returns a pointer to some data?

– tadman
2 hours ago





Where does that string that gets returned go after c_str() is called and returns a pointer to some data?

– tadman
2 hours ago




2




2





stackoverflow.com/questions/23464504/…

– Wyck
2 hours ago





stackoverflow.com/questions/23464504/…

– Wyck
2 hours ago




2




2





Probably not a duplicate but helpful: stackoverflow.com/questions/349025/…. Also your interview question is missing #include <string> so technically it would be a compiler error ;)

– Tas
2 hours ago





Probably not a duplicate but helpful: stackoverflow.com/questions/349025/…. Also your interview question is missing #include <string> so technically it would be a compiler error ;)

– Tas
2 hours ago




1




1





I'm a bit surprised that the documentation for std::string::c_str doesn't mention destruction of the string as grounds for the returned pointer being invalidated (unless you consider the destructor to be a non-const member function). I think many people coming from a C background would benefit from having this written explicitly

– alter igel
2 hours ago






I'm a bit surprised that the documentation for std::string::c_str doesn't mention destruction of the string as grounds for the returned pointer being invalidated (unless you consider the destructor to be a non-const member function). I think many people coming from a C background would benefit from having this written explicitly

– alter igel
2 hours ago





1




1





@Tas: io-streams implement the shift-operators including overloads on basic_string ,so it needs its definition which requires it to include <string>. So it can't be a compiler error.

– engf-010
2 hours ago





@Tas: io-streams implement the shift-operators including overloads on basic_string ,so it needs its definition which requires it to include <string>. So it can't be a compiler error.

– engf-010
2 hours ago












2 Answers
2






active

oldest

votes


















6














The code exhibits undefined behavior.



get_data() returns a temporary which expires at the end of the full expression (*):



const char* data = get_data().c_str() ;
// ^~~~~~~~~~ ^
// this evaluates |
// to a prvalue |
// temporary expires here


data points to an internal of that object, so after the temporary ends you are left with a dangling pointer. Accessing it leads to Undefined Behavior. So the next line std::cout << data << "n"; makes the whole program exhibit Undefined Behavior.




*) There is an exception to this rule which doesn't apply here. If a prvalue is directly bound to a reference, the lifetime of the prvalue is extended to the lifetime of the reference.



For instance, this would have been fine:



int main()

const std::string& ref = get_data();
const char* data = ref.c_str();
std::cout << data << "n";
return 0;






share|improve this answer

























  • Your answer should include something with the words sequence point to get my upvote, because people still search for that - even though it doesn't appear in the standard.

    – Wyck
    2 hours ago







  • 1





    @Wyck I don't see how sequence points are relevant here. The only thing that matters is the lifetime of the temporary. And that lifetime is until the end of the full expression it appears on.

    – bolov
    2 hours ago






  • 1





    @Wyck newer standards don't use "sequence points" indeed. They use "sequenced after" and "sequenced before". I still don't see the connection to the problem at hand... Maybe I am missing something, could you please tell how sequencing relates here?

    – bolov
    2 hours ago






  • 1





    @Wyck a single statement can possibly have multiple sequencing considerations, but they would not affect when a temporary is destroyed

    – kmdreko
    2 hours ago






  • 1





    The only thing that this doesn't cover is the Asker's statement that judging that the returned string is immutable suggests that they might not know that the string literal and the returned std::string are separate objects.

    – user4581301
    1 hour ago


















1














Yes it is, but not the way you're doing it.



If you did this:



std::cout << get_data().c_str() << 'n';


you'd be just fine.



That's because a temporary is guaranteed to live for the lifetime of the full expression it was created in. It may live longer in certain, very specific circumstances.



If you bind a reference to a temporary, it's lifetime will be extended to be the lifetime of the name it was bound to. So, code like this:



std::string const &x = get_data();
std::cout << x.c_str() << 'n';


would also work because the temporary returned by get_data would be bound to the reference named x, and so as long as x remained a valid name to use, the temporary would still exist.






share|improve this answer























    Your Answer






    StackExchange.ifUsing("editor", function ()
    StackExchange.using("externalEditor", function ()
    StackExchange.using("snippets", function ()
    StackExchange.snippets.init();
    );
    );
    , "code-snippets");

    StackExchange.ready(function()
    var channelOptions =
    tags: "".split(" "),
    id: "1"
    ;
    initTagRenderer("".split(" "), "".split(" "), channelOptions);

    StackExchange.using("externalEditor", function()
    // Have to fire editor after snippets, if snippets enabled
    if (StackExchange.settings.snippets.snippetsEnabled)
    StackExchange.using("snippets", function()
    createEditor();
    );

    else
    createEditor();

    );

    function createEditor()
    StackExchange.prepareEditor(
    heartbeatType: 'answer',
    autoActivateHeartbeat: false,
    convertImagesToLinks: true,
    noModals: true,
    showLowRepImageUploadWarning: true,
    reputationToPostImages: 10,
    bindNavPrevention: true,
    postfix: "",
    imageUploader:
    brandingHtml: "Powered by u003ca class="icon-imgur-white" href="https://imgur.com/"u003eu003c/au003e",
    contentPolicyHtml: "User contributions licensed under u003ca href="https://creativecommons.org/licenses/by-sa/3.0/"u003ecc by-sa 3.0 with attribution requiredu003c/au003e u003ca href="https://stackoverflow.com/legal/content-policy"u003e(content policy)u003c/au003e",
    allowUrls: true
    ,
    onDemand: true,
    discardSelector: ".discard-answer"
    ,immediatelyShowMarkdownHelp:true
    );



    );






    Aknin Abdo is a new contributor. Be nice, and check out our Code of Conduct.









    draft saved

    draft discarded


















    StackExchange.ready(
    function ()
    StackExchange.openid.initPostLogin('.new-post-login', 'https%3a%2f%2fstackoverflow.com%2fquestions%2f55408411%2fis-it-safe-to-use-c-str-on-a-temporary-string%23new-answer', 'question_page');

    );

    Post as a guest















    Required, but never shown

























    2 Answers
    2






    active

    oldest

    votes








    2 Answers
    2






    active

    oldest

    votes









    active

    oldest

    votes






    active

    oldest

    votes









    6














    The code exhibits undefined behavior.



    get_data() returns a temporary which expires at the end of the full expression (*):



    const char* data = get_data().c_str() ;
    // ^~~~~~~~~~ ^
    // this evaluates |
    // to a prvalue |
    // temporary expires here


    data points to an internal of that object, so after the temporary ends you are left with a dangling pointer. Accessing it leads to Undefined Behavior. So the next line std::cout << data << "n"; makes the whole program exhibit Undefined Behavior.




    *) There is an exception to this rule which doesn't apply here. If a prvalue is directly bound to a reference, the lifetime of the prvalue is extended to the lifetime of the reference.



    For instance, this would have been fine:



    int main()

    const std::string& ref = get_data();
    const char* data = ref.c_str();
    std::cout << data << "n";
    return 0;






    share|improve this answer

























    • Your answer should include something with the words sequence point to get my upvote, because people still search for that - even though it doesn't appear in the standard.

      – Wyck
      2 hours ago







    • 1





      @Wyck I don't see how sequence points are relevant here. The only thing that matters is the lifetime of the temporary. And that lifetime is until the end of the full expression it appears on.

      – bolov
      2 hours ago






    • 1





      @Wyck newer standards don't use "sequence points" indeed. They use "sequenced after" and "sequenced before". I still don't see the connection to the problem at hand... Maybe I am missing something, could you please tell how sequencing relates here?

      – bolov
      2 hours ago






    • 1





      @Wyck a single statement can possibly have multiple sequencing considerations, but they would not affect when a temporary is destroyed

      – kmdreko
      2 hours ago






    • 1





      The only thing that this doesn't cover is the Asker's statement that judging that the returned string is immutable suggests that they might not know that the string literal and the returned std::string are separate objects.

      – user4581301
      1 hour ago















    6














    The code exhibits undefined behavior.



    get_data() returns a temporary which expires at the end of the full expression (*):



    const char* data = get_data().c_str() ;
    // ^~~~~~~~~~ ^
    // this evaluates |
    // to a prvalue |
    // temporary expires here


    data points to an internal of that object, so after the temporary ends you are left with a dangling pointer. Accessing it leads to Undefined Behavior. So the next line std::cout << data << "n"; makes the whole program exhibit Undefined Behavior.




    *) There is an exception to this rule which doesn't apply here. If a prvalue is directly bound to a reference, the lifetime of the prvalue is extended to the lifetime of the reference.



    For instance, this would have been fine:



    int main()

    const std::string& ref = get_data();
    const char* data = ref.c_str();
    std::cout << data << "n";
    return 0;






    share|improve this answer

























    • Your answer should include something with the words sequence point to get my upvote, because people still search for that - even though it doesn't appear in the standard.

      – Wyck
      2 hours ago







    • 1





      @Wyck I don't see how sequence points are relevant here. The only thing that matters is the lifetime of the temporary. And that lifetime is until the end of the full expression it appears on.

      – bolov
      2 hours ago






    • 1





      @Wyck newer standards don't use "sequence points" indeed. They use "sequenced after" and "sequenced before". I still don't see the connection to the problem at hand... Maybe I am missing something, could you please tell how sequencing relates here?

      – bolov
      2 hours ago






    • 1





      @Wyck a single statement can possibly have multiple sequencing considerations, but they would not affect when a temporary is destroyed

      – kmdreko
      2 hours ago






    • 1





      The only thing that this doesn't cover is the Asker's statement that judging that the returned string is immutable suggests that they might not know that the string literal and the returned std::string are separate objects.

      – user4581301
      1 hour ago













    6












    6








    6







    The code exhibits undefined behavior.



    get_data() returns a temporary which expires at the end of the full expression (*):



    const char* data = get_data().c_str() ;
    // ^~~~~~~~~~ ^
    // this evaluates |
    // to a prvalue |
    // temporary expires here


    data points to an internal of that object, so after the temporary ends you are left with a dangling pointer. Accessing it leads to Undefined Behavior. So the next line std::cout << data << "n"; makes the whole program exhibit Undefined Behavior.




    *) There is an exception to this rule which doesn't apply here. If a prvalue is directly bound to a reference, the lifetime of the prvalue is extended to the lifetime of the reference.



    For instance, this would have been fine:



    int main()

    const std::string& ref = get_data();
    const char* data = ref.c_str();
    std::cout << data << "n";
    return 0;






    share|improve this answer















    The code exhibits undefined behavior.



    get_data() returns a temporary which expires at the end of the full expression (*):



    const char* data = get_data().c_str() ;
    // ^~~~~~~~~~ ^
    // this evaluates |
    // to a prvalue |
    // temporary expires here


    data points to an internal of that object, so after the temporary ends you are left with a dangling pointer. Accessing it leads to Undefined Behavior. So the next line std::cout << data << "n"; makes the whole program exhibit Undefined Behavior.




    *) There is an exception to this rule which doesn't apply here. If a prvalue is directly bound to a reference, the lifetime of the prvalue is extended to the lifetime of the reference.



    For instance, this would have been fine:



    int main()

    const std::string& ref = get_data();
    const char* data = ref.c_str();
    std::cout << data << "n";
    return 0;







    share|improve this answer














    share|improve this answer



    share|improve this answer








    edited 2 hours ago

























    answered 2 hours ago









    bolovbolov

    33.1k876140




    33.1k876140












    • Your answer should include something with the words sequence point to get my upvote, because people still search for that - even though it doesn't appear in the standard.

      – Wyck
      2 hours ago







    • 1





      @Wyck I don't see how sequence points are relevant here. The only thing that matters is the lifetime of the temporary. And that lifetime is until the end of the full expression it appears on.

      – bolov
      2 hours ago






    • 1





      @Wyck newer standards don't use "sequence points" indeed. They use "sequenced after" and "sequenced before". I still don't see the connection to the problem at hand... Maybe I am missing something, could you please tell how sequencing relates here?

      – bolov
      2 hours ago






    • 1





      @Wyck a single statement can possibly have multiple sequencing considerations, but they would not affect when a temporary is destroyed

      – kmdreko
      2 hours ago






    • 1





      The only thing that this doesn't cover is the Asker's statement that judging that the returned string is immutable suggests that they might not know that the string literal and the returned std::string are separate objects.

      – user4581301
      1 hour ago

















    • Your answer should include something with the words sequence point to get my upvote, because people still search for that - even though it doesn't appear in the standard.

      – Wyck
      2 hours ago







    • 1





      @Wyck I don't see how sequence points are relevant here. The only thing that matters is the lifetime of the temporary. And that lifetime is until the end of the full expression it appears on.

      – bolov
      2 hours ago






    • 1





      @Wyck newer standards don't use "sequence points" indeed. They use "sequenced after" and "sequenced before". I still don't see the connection to the problem at hand... Maybe I am missing something, could you please tell how sequencing relates here?

      – bolov
      2 hours ago






    • 1





      @Wyck a single statement can possibly have multiple sequencing considerations, but they would not affect when a temporary is destroyed

      – kmdreko
      2 hours ago






    • 1





      The only thing that this doesn't cover is the Asker's statement that judging that the returned string is immutable suggests that they might not know that the string literal and the returned std::string are separate objects.

      – user4581301
      1 hour ago
















    Your answer should include something with the words sequence point to get my upvote, because people still search for that - even though it doesn't appear in the standard.

    – Wyck
    2 hours ago






    Your answer should include something with the words sequence point to get my upvote, because people still search for that - even though it doesn't appear in the standard.

    – Wyck
    2 hours ago





    1




    1





    @Wyck I don't see how sequence points are relevant here. The only thing that matters is the lifetime of the temporary. And that lifetime is until the end of the full expression it appears on.

    – bolov
    2 hours ago





    @Wyck I don't see how sequence points are relevant here. The only thing that matters is the lifetime of the temporary. And that lifetime is until the end of the full expression it appears on.

    – bolov
    2 hours ago




    1




    1





    @Wyck newer standards don't use "sequence points" indeed. They use "sequenced after" and "sequenced before". I still don't see the connection to the problem at hand... Maybe I am missing something, could you please tell how sequencing relates here?

    – bolov
    2 hours ago





    @Wyck newer standards don't use "sequence points" indeed. They use "sequenced after" and "sequenced before". I still don't see the connection to the problem at hand... Maybe I am missing something, could you please tell how sequencing relates here?

    – bolov
    2 hours ago




    1




    1





    @Wyck a single statement can possibly have multiple sequencing considerations, but they would not affect when a temporary is destroyed

    – kmdreko
    2 hours ago





    @Wyck a single statement can possibly have multiple sequencing considerations, but they would not affect when a temporary is destroyed

    – kmdreko
    2 hours ago




    1




    1





    The only thing that this doesn't cover is the Asker's statement that judging that the returned string is immutable suggests that they might not know that the string literal and the returned std::string are separate objects.

    – user4581301
    1 hour ago





    The only thing that this doesn't cover is the Asker's statement that judging that the returned string is immutable suggests that they might not know that the string literal and the returned std::string are separate objects.

    – user4581301
    1 hour ago













    1














    Yes it is, but not the way you're doing it.



    If you did this:



    std::cout << get_data().c_str() << 'n';


    you'd be just fine.



    That's because a temporary is guaranteed to live for the lifetime of the full expression it was created in. It may live longer in certain, very specific circumstances.



    If you bind a reference to a temporary, it's lifetime will be extended to be the lifetime of the name it was bound to. So, code like this:



    std::string const &x = get_data();
    std::cout << x.c_str() << 'n';


    would also work because the temporary returned by get_data would be bound to the reference named x, and so as long as x remained a valid name to use, the temporary would still exist.






    share|improve this answer



























      1














      Yes it is, but not the way you're doing it.



      If you did this:



      std::cout << get_data().c_str() << 'n';


      you'd be just fine.



      That's because a temporary is guaranteed to live for the lifetime of the full expression it was created in. It may live longer in certain, very specific circumstances.



      If you bind a reference to a temporary, it's lifetime will be extended to be the lifetime of the name it was bound to. So, code like this:



      std::string const &x = get_data();
      std::cout << x.c_str() << 'n';


      would also work because the temporary returned by get_data would be bound to the reference named x, and so as long as x remained a valid name to use, the temporary would still exist.






      share|improve this answer

























        1












        1








        1







        Yes it is, but not the way you're doing it.



        If you did this:



        std::cout << get_data().c_str() << 'n';


        you'd be just fine.



        That's because a temporary is guaranteed to live for the lifetime of the full expression it was created in. It may live longer in certain, very specific circumstances.



        If you bind a reference to a temporary, it's lifetime will be extended to be the lifetime of the name it was bound to. So, code like this:



        std::string const &x = get_data();
        std::cout << x.c_str() << 'n';


        would also work because the temporary returned by get_data would be bound to the reference named x, and so as long as x remained a valid name to use, the temporary would still exist.






        share|improve this answer













        Yes it is, but not the way you're doing it.



        If you did this:



        std::cout << get_data().c_str() << 'n';


        you'd be just fine.



        That's because a temporary is guaranteed to live for the lifetime of the full expression it was created in. It may live longer in certain, very specific circumstances.



        If you bind a reference to a temporary, it's lifetime will be extended to be the lifetime of the name it was bound to. So, code like this:



        std::string const &x = get_data();
        std::cout << x.c_str() << 'n';


        would also work because the temporary returned by get_data would be bound to the reference named x, and so as long as x remained a valid name to use, the temporary would still exist.







        share|improve this answer












        share|improve this answer



        share|improve this answer










        answered 1 hour ago









        OmnifariousOmnifarious

        41k11101162




        41k11101162




















            Aknin Abdo is a new contributor. Be nice, and check out our Code of Conduct.









            draft saved

            draft discarded


















            Aknin Abdo is a new contributor. Be nice, and check out our Code of Conduct.












            Aknin Abdo is a new contributor. Be nice, and check out our Code of Conduct.











            Aknin Abdo is a new contributor. Be nice, and check out our Code of Conduct.














            Thanks for contributing an answer to Stack Overflow!


            • Please be sure to answer the question. Provide details and share your research!

            But avoid


            • Asking for help, clarification, or responding to other answers.

            • Making statements based on opinion; back them up with references or personal experience.

            To learn more, see our tips on writing great answers.




            draft saved


            draft discarded














            StackExchange.ready(
            function ()
            StackExchange.openid.initPostLogin('.new-post-login', 'https%3a%2f%2fstackoverflow.com%2fquestions%2f55408411%2fis-it-safe-to-use-c-str-on-a-temporary-string%23new-answer', 'question_page');

            );

            Post as a guest















            Required, but never shown





















































            Required, but never shown














            Required, but never shown












            Required, but never shown







            Required, but never shown

































            Required, but never shown














            Required, but never shown












            Required, but never shown







            Required, but never shown







            Popular posts from this blog

            How does Billy Russo acquire his 'Jigsaw' mask? Unicorn Meta Zoo #1: Why another podcast? Announcing the arrival of Valued Associate #679: Cesar Manara Favourite questions and answers from the 1st quarter of 2019Why does Bane wear the mask?Why does Kylo Ren wear a mask?Why did Captain America remove his mask while fighting Batroc the Leaper?How did the OA acquire her wisdom?Is Billy Breckenridge gay?How does Adrian Toomes hide his earnings from the IRS?What is the state of affairs on Nootka Sound by the end of season 1?How did Tia Dalma acquire Captain Barbossa's body?How is one “Deemed Worthy”, to acquire the Greatsword “Dawn”?How did Karen acquire the handgun?

            Личност Атрибути на личността | Литература и източници | НавигацияРаждането на личносттаредактиратередактирате

            A sequel to Domino's tragic life Why Christmas is for Friends Cold comfort at Charles' padSad farewell for Lady JanePS Most watched News videos