Problem with operator[] in c++, i have some class:
197 class Permutation{
198 private:
199 unsigned int* array;
200 unsigned int size;
201
202 void fill(){
203 for(unsigned int i=0;i<size;i++)
204 array[i]=i;
205 }
206 void init(const unsigned int s){
207 if(s){
208 array=new unsigned int[s];
209 size=s;
210 }else{
211 size=0;
212 array=0;
213 }
214 }
215 void clear(){
216 if(array){
217 delete[]array;
218 开发者_如何学JAVA array=0;
219 }
220 size=0;
221 }
222 public:
223 Permutation(const unsigned int& s=0):array(0),size(0){
224 init(s);
225 fill();
226 }
227 ~Permutation(){
228 clear();
229 }
230 unsigned int& operator[](const unsigned int& idx){
231 assert(idx<size);
232 return array[idx];
233 }
234 unsigned int& get(const unsigned int& idx)
235 {
236 assert(idx<size);
237 return array[idx];
238 }
253 Permutation& operator=(const Permutation& p){
254 clear();
255 init(p.size);
256 size=p.size;
257 for(unsigned int i=0;i<size;i++)
258 array[i]=p.array[i];
259 return *this;
260 }
261
262 Permutation(const Permutation&p)
263 {
264 clear();
265 init(p.size);
266 size=p.size;
267 for(unsigned int i=0;i<size;i++)
268 array[i]=p.array[i];
269 }
};
when I use
Permutation x(3);
x[0]=1;
it works very well, but when I use:
Permutation* x=new Permutation(3);
x->get(0)=10; // this works fine
x[0]=1;
in this case, in debugger I see it is called a constructor of new object for Permutation class, what is going on ? and why? I someone know what is going about I would appreciate for information.
First, your code:
Permutation* x=new Permutation(3);
x->get(0)=10; // this works fine
And then you do this:
x[0]=1;
And what you are doing is treating the pointer x as an array, and initializing it, which is longhand for:
x[0] = Permuation(1); // implicit conversion using Permulation(const unsigned long&)
What you meant to write was:
(*x)[0]=1; // follow x and then invoke the [] operator
Or, equivalent:
x->operator[](0) = 1;
For pointers, x[0]
is equivalent to *(x+0)
, which is equivalent to *x
. So you're actually assigning to the Permutation
object.
Since you're assigning a value 1, the Permutation(const unsigned int&)
conversion constructor is used. This creates a temporary of type Permutation
, which is then copies into the object *x
, using your assignment operator.
I wanted to present one other option on how you can write this a bit easier. Instead of working with the pointer, you can create a reference:
Permutation &rx = *x;
rx[0] = 1; // same as (*x)[0] = 1;
If you are using an overloaded operator in just one place, this is overkill. But I find this trick quite convenient when you are using overloaded operators in many places.
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