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I'm reading a book on C++. And I figured I should practice a little of what I know. So I created a class, and it contained a member in the form of classname * name[] which I would allocate later with new because I didn't know the amount of space it would need. So when I tried to type name = new classname[capacity /* a variable passed in constructor */], it didn't work. Now that I think of it, this makes sense. I referred to my book, and I realized that name is the same thing as &name[0]. This explains why my IDE said "expression must be a modifiable lvalue". So now my question is, how can I declare an array on one line, and assign it with new on another line? I would also like to know why type * name[] is valid as a class member, but not outside of a class?

class MenuItem
{
public:
    MenuItem(string description):itsDescription(description) {};
    void setDescription(string newDescription);
    string getDescription() const;
private:
    string itsDescription;
};

void MenuItem::setDescription(string newDescription)
{
    itsDescription = newDescription;
}

string MenuItem::getDescription() const
{
    return itsDescription;
}

class Menu
{
public:
    Menu(int capacity);
private:
    MenuItem * items[];
};

Menu::Menu(int capacity)
{
    items = new MenuItem("")[capacity];
}

Any help is much appreciated.

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Show us what you've done. –  mydogisbox Apr 11 '12 at 21:41
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2 Answers

up vote 4 down vote accepted

Unlike Java, MenuItem* items[] is not a proper type, and is only allowed in three situations, and you aren't using it for any of those situations. Judging by the rest of your question, I assume you want a dynamically sized array of MenuItem items. In that case, your member should simply be MenuItem* items;. Then you can allocate an array of that object no problem.

int capacity = 4;
items = new MenuItem[capacity]; //these are default initialized

As the comments (and downvoters?) say, the "best" solution is simply to use a std::vector<MenuItem> items member instead, and let it automagically take care of the allocation and deallocation for you.

Educational but not really important:
The only times in C++ when you can have empty brackets [] are:

// as array parameters (don't be fooled, this is actually a pointer)
void myfunction(int array[]) 

and

// as local array defintion BUT ONLY WHEN IMMEDIATELY ASSIGNED VALUES
int array[] = {3, 6, 1};

and

// as the last member of an extensible object, for a C hack.

struct wierd {
    int array[];  // effectively a zero length array
};
wierd* dynamic = malloc(sizeof(wierd) + capacity*sizeof(int));

// don't do this in C++
// Actually, I think this is technically illegal as well, 
// but several compilers allow it anyway.
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1  
Vector is the method of choice for C++ I would think, though your way doesn't require STL. –  Michael Dorgan Apr 11 '12 at 21:49
    
@MichaelDorgan: I've now mentioned that in the answer. –  Mooing Duck Apr 11 '12 at 21:51
    
+1. Factually correct. I learned to never answer array questions years ago. No matter if what you say is useful, somebody will always be there to downvote it. –  Amardeep Apr 11 '12 at 21:56
    
Thanks, I can now continue. –  Aidan Mueller Apr 11 '12 at 22:03
    
@MichaelDorgan: Yes, mentioning that is worthwhile, but answering a question like this with "use a vector" is not helpful. Arrays are not depricated and are still needed. Everyone writing C++ code should understand how they work. Hell, when VS 2005 shipped they enabled checked iterators and bounds checking by default, which slowed our image processing code down by 25%, so now... we use arrays (well, actually our own homegrown vector type) because it just isn't worth it should that pop up again. +1 –  Ed S. Apr 11 '12 at 23:17
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In C, an array is referenced by the address of its first element. You'll notice that a pointer references an address...

MenuItem * items;
items = new MenuItem[size];

In this case items is a pointer to one or more MenuItem instances. C++ is the same in this case. This is a simplified version, there are other complexities to consider if you want to pass pointers to arrays as parameters, but I'm sure you'll figure those out when you get there.

Just in case you're wondering, with the code you had:

MenuItem * itemsarr[];   // invalid still because no array size

In this case you're declaring itemsarr as an array of pointers to MenuItem instances. As the pendantic comment below indicated, this in itself is still not generally valid syntax unless you specify a legitimate array size, eg.

MenuItem * itemsarr[20];  // would be valid

EDIT: Made pedant-friendly.

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Your answer was also helpful. You deserve an upvote. –  Aidan Mueller Apr 11 '12 at 22:04
    
"C++ is the same." Accurate in this case, but misleading, as in C++, you can get a reference to an array itself. "you're declaring itemsarr as an array of pointers to MenuItem instances", that's not a valid C++ declaration, except as the last member of a struct. –  Mooing Duck Apr 11 '12 at 22:44
    
He's obviously a beginner, I was trying to leave an understandable answer without getting into the confusing details. –  dragonx Apr 12 '12 at 0:58
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