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error: passing 'const QByteArray' as 'this' argument of 'QByteArray& QByteArray::append(const QByteArray&)' discards qualifiers [-fpermissive]

since it is a convention to make objects const while passing as function arguments i have done it. but now i am getting an error!!, i dnt want to make the function constant as i have to convert data in qbyte array into short and then append it another array.

QByteArray ba((const char*)m_output.data(), sizeof(ushort)); playbackBuffer.append(ba);

i really need to pass this array into playbackbuffer;

it is giving me an error on playbackBuffer.append(ba);

please help thanks in advance

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7  
You will atleast have to post some code to make sense of the error, Don't you think so? –  Alok Save Feb 17 '12 at 11:31
1  
we need more code –  Otto Allmendinger Feb 17 '12 at 11:31
    
The convention should be that you pass object by const reference if they are not meant to be changed. If the passed QByteArray shouldn't be changed, then you can copy it to a local QByteArray and work on that one. –  stefaanv Feb 17 '12 at 12:03
    
"since it is a convention to make objects const while passing as function arguments" - only if the function isn't supposed to modify it. If it does modify it, then declaring it const is misleading at best. –  Mike Seymour Feb 17 '12 at 12:03
    
sorry for that will post the code. –  ken Feb 17 '12 at 12:03

5 Answers 5

up vote 5 down vote accepted

This means you are calling a non-const member function on a const member. Presumably, your append function modifies the byte array. With a const reference, you shouldn't be modifying.

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i am not modifying data from array im only reading it and appending it into another array,is'nt there a way around. –  ken Feb 17 '12 at 12:09
1  
From your edited question: it is playbackBuffer that may not be const. Don't pass it as const reference if it needs to be filled in. –  stefaanv Feb 17 '12 at 12:19

Basically what it says is that you're trying to append to a constant array.

If "append" does not change the object itself but just returns the two arrays appended, the method needs to be declared const to allow the call.

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thanks for the reply –  ken Feb 17 '12 at 12:15

Consider this:

struct foo
{
    void bar();
};

const foo f;
f.bar();

Here, in the call to bar(), the this pointer is &f. But bar() is not a const-function, so the type of this is foo*, which is incompatible with const foo*. (In other words, bar() says it might mutate the foo, but f says it's a non-mutablefoo.)

Either bar() needs to be marked as const (if it can), or f needs to not be const.

In your case, I'm going to assume you're using Qt and so cannot modify QByteArray (nor should you, since append is necessarily a non-const function), and instead suggest you get rid of the const on the object, which is preventing you from using the function.

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So you are trying to call a non const function on a const object? That's what passing a const xxx as 'this' argument would mean. Since ultimately any member function really is (Class * this, rest of arguments)

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Either make your

QByteArray& QByteArray::append(const QByteArray&);

be

QByteArray& QByteArray::append(const QByteArray&) const;

(highly unlikely to solve anything) or just

    QByteArray* pObj = const_cast<QByteArray*>(&your_obj)
    if (pObj)
        pObj->append(...
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1  
Dangerously close to -1'ing, but why would you suggest a const_cast here? Do you want undefined behavior? –  GManNickG Feb 17 '12 at 11:36
    
Indeed, const_cast is completely wrong, and will give undefined behaviour if the object is const. If you need to be able to modify it, then don't declare it const in the first place. –  Mike Seymour Feb 17 '12 at 11:39
    
This smells like something you should never do ... –  hochl Feb 17 '12 at 11:44
    
any better now ? –  kellogs Feb 17 '12 at 11:44
2  
No, this is worse: only dynamic_cast returns a null pointer when it can't cast. –  stefaanv Feb 17 '12 at 11:59

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