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I have a struct

 typedef struct _scaffale {
     int NumeroScaffale;
     scaffali * succ;
     copia** pos;
 } scaffale;

in which I have an array of the struct copia. The error comes in the following code:

copia** temp;
temp=scaff->pos;
(temp+controllo)=nuovo->copie;

in the third row to be precise. The question is: why this line give me that error while in the following code in which I use the same construct it is perfectly allowed:

while(i<=MAXLIBRI){
    if ((temp+i)!=NULL) {
        i=i+1;
    }
    else break;
}
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2 Answers 2

up vote 3 down vote accepted

(temp+controllo) is an rvalue. By that I mean it's a computed value, not a location to put something. I'm guessing that what you really meant is *(temp+controllo) = nuovo->copie; instead, which would have assigned nuovo->copie into the location identified by temp+controllo.

For an analogy, if i is an int, you can say i = 3, but you can't say (i+1) = 3. I hope it's obvious why.

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very well.. just a forgetfulness.. thank you very much for such quick answer. –  alez87 Mar 22 '13 at 18:13
2  
Also, instead of *(temp + controllo), use temp[controllo]. –  user529758 Mar 22 '13 at 18:15

(temp+controllo) is a computed value, and doesn't follow the language rules for being a proper l-value which is a fancy way of saying "you can't put it on the left of an assignment operator".

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The temp += controllo line is completely pointless in this code. –  Kevin Ballard Mar 22 '13 at 18:13
1  
Also, lvalue != can be assigned. An array is an lvalue, yet it can't be assigned. –  user529758 Mar 22 '13 at 18:15
    
@EdwinBuck: No, array = 5 does not work. It's a hard error. –  Kevin Ballard Mar 22 '13 at 22:05
    
my mistake. Thank you for pointing it out. I'm probably reminiscing the ghosts of array* and array[0] compatibility. –  Edwin Buck Mar 22 '13 at 22:18

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