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Why don't we use & in scanf while storing string in C?
Say eg. char c[10]; scanf("%s",c); Why don't we use &c here?
5 ответов
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because 'c', when used without an index as it is, is considered a pointer (or simply the array's starting place in memory) to the first value in the array.
when you use for instance, &<a variable with a single peice of data (ex. int n; scanf("%d", &n;))> you are really accessing the memory location of that variable.
So, in short, you dont use the & before 'c' in this case because 'c' is ALREADY a pointer (memory address)
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In case of a string (character array), the variable itself points to the first element of the array in question. Thus, there is no need to use the '&' operator to pass the address. '&' is used to get the address of the variable.
src:-
https://www.google.com/amp/s/www.geeksforgeeks.org/not-used-strings-scanf-function/amp/
Any example code to what @Slick and I mentioned.
https://code.sololearn.com/cc6e9RnbX38D/?ref=app
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Rohit but why do I get error when I type
printf("%c", name) removing the * in name.
By your definition, as char points to the first element in the array, why isn't
's' in 'sololearn' getting displayed separately?
Isn't char supposed to just get one character and leave the rest, in this case 's' and leaving 'ololearn'?
Why this works only if I use printf("%c", *name)?
or
printf("%s", name) as it gets displayed as a string
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Verstappen name is an array of characters which means its a "string", so you will need to do for it to be valid.
printf("%s", name);
%s is for string (or array of characters).
%c is for a single character.
*name = name[0]
*(name + 1) = name[1]
And we know both are a single character and hence this works
printf("%c", *name);
displaying the name[0] which is "s" in our example.
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Rohit ohh okie got it thanks