Let's say you have:
const char * something = "m";
How would one make this uppercase, using toupper (or something else, if applicable)?
I want to use a char *
instead of a string
(I can use a string, but then I have to use str.c_str()
).
So, how can I make char * something = "m";
contain "M"
?
I find you choice of C strings disturbing.. but anyway.
You can't change a string literal ( char *something
). Try an array:
char something[] = "m";
something[0] = toupper(something[0]);
To change an entire string:
char something[] = "hello";
char *p = something;
while (*p) {
*p = toupper(*p);
p++;
}
You can use the same algorithmic approach that you know for std::string
for raw arrays:
char s[] = "hello world";
std::transform(s, s + std::strlen(s), s, static_cast<int(*)(int)>(std::toupper));
You cannot do this for immutable string literals (like const char * s = "hello world;"
) for obvious reasons, so you won't get around an additional allocation/copy for that.
Update: As Ildjarn says in the comment, it's important to note that string literals are always read-only, even though for historical reasons you are allowed to bind them to a pointer-to-mutable, like char * s = "hello world";
. Any decent C++ compiler should slap you in the face if you attempt this, but it is valid C++ -- but any attempt to actually modify any element of s
is undefined behaviour.
As explained in the very famous C book - The C Programming Language
by Kernighan & Ritchie
in section 5.5 Character Pointers and Functions
,
char amessage[] = "now is the time"; /* an array */
char *pmessage = "now is the time"; /* a pointer */
`amessage` is an array, just big enough to hold the
sequence of characters and `'\0'` that initializes it.
Individual characters within the array may be changed
but `amessage` will always refer to the same storage.
On the other hand, `pmessage` is a pointer, initialized
to point to a string constant; the pointer may subsequently
be modified to point elsewhere, but the result is undefined
if you try to modify the string contents.
OTOH, in C, to convert to upper case letters, you can use the following program as a reference.
#include <stdio.h>
#include <ctype.h>
int main(void)
{
int i=0;
char str[]="Test String.\n";
char c;
while (str[i]) {
c=str[i];
putchar(toupper(c));
i++;
}
return 0;
}
In C++
#include <iostream>
#include <string>
#include <locale>
using namespace std;
int main ()
{
locale loc;
string str="Test String.\n";
for (size_t i=0; i<str.length(); ++i)
cout << toupper(str[i],loc);
return 0;
}
EDIT: Adding pointer version (as requested by @John) for the C version
#include <stdio.h>
#include <ctype.h>
int main(void)
{
int i=0;
char str[]="Test String.\n";
char *ptr = str;
while (*ptr) {
putchar(toupper(*ptr));
ptr++;
}
return 0;
}
Hope it helps!
You can convert C-string to std::string and then use boost::to_upper to change string in place or boost::to_upper_copy to create upper case copy of the string. Here is the code example:
#include <iostream>
#include <boost/algorithm/string/case_conv.hpp>
int main ()
{
char const * s = "Test String.\n";
std::string str(s);
std::cout << boost::to_upper_copy(str).c_str() << std::endl;
return 0;
}
Hope this helps.
You could do:
#include <algorithm>
#include <iterator>
#include <ctype.h>
char test[] = "m";
std::transform(std::begin(test), std::end(test), std::begin(test), ::topper);
This applies the ::toupper
function to character of the string. This is the ::toupper
function in the global namespace that comes from C. std::toupper
has multiple overloads and ::toupper
looks more elegant than static_cast<int (*)(int)>(&std::toupper)
.
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