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From definition double strtod ( const char * str, char ** endptr );

C reference sites provide an example for that mighty function:

char szOrbits[] = "365.24 29.53";
char * pEnd;
double d1, d2;
d1 = strtod (szOrbits,&pEnd);
d2 = strtod (pEnd,NULL);

If endptr should be of type char ** why is char *pEnd used here ? And not char **pEnd ?

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Look up pass-by-reference in C. That's what it does. –  chris Sep 21 '12 at 19:27
    
endptr is of type char** so that the function could modify the char* it points to. –  eq- Sep 21 '12 at 19:27
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2 Answers 2

up vote 6 down vote accepted

The type of pEnd is char *. The type of &pEnd is char **.

C passes arguments to functions by value, so to modify a pointer you need to pass a pointer to the pointer.

You could define a char ** directly but you would need to initialize it to a char * as the idea is that strtod is modifying a char *.

Like:

char *q;
char **p = &q;

d1 = strtod (szOrbits, p);

Obviously the intermediate p pointer is not necessary and you can use &q directly.

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+1 nice explanation of a classic misunderstanding of pointers/ –  R.. Sep 21 '12 at 22:32
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pEnd is a char*, as you've observed. The first example call to strtod() passes &pEnd as the second argument. &pEnd is the address of pEnd, and is therefore of type char**.

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