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I'm having a bit of trouble passing multiple variables to scanf:
#include<stdio.h>
int main(void) {
char *name;
float weight;
printf("Please enter your name, then weight separated by a comma: ");
scanf("%s,%f", name, &weight);
printf("%s, your weight is %.2f!\n", name, weight);
return 0;
}
Please enter your name, then weight separated by a comma: Tommy,184
Tommy,184, your weight is 0.00!
What would be the proper way to do this, and why doesn't scanf detect the comma and pull the necessary values in their variables?
There are two mistakes in your code:
Wild pointer
char *name; is not a safe code. *name* is a wild pointer and it points to some arbitrary memory location and may cause a program to crash or behave badly. You should use an array like char name[10]. You can refer to this link.
Comma in scanf
You can check this thread for more details
The comma is not considered a whitespace character so the format specifier "%s" will consume the , and everything else on the line writing beyond the bounds of the array sem causing undefined behaviour
I've just tried to modify your code, you should consider removing the comma, and replace it with a space
printf("Please enter your name, then weight separated by a space: ");
scanf("%s %f", name, &weight); // your code should work properly
I think you should be using a char array for the name variable and if you want to store its adress you would assign it to a pointer, doesn't make sense the way you wrote it
float weight;
char[20] name;
scanf(" %s, %f", &name, &weight);
Can you give this a try?
int main()
{
int num;
char str[50];
scanf("%49[^,],%d", str, &num);
printf("%s %d",str, num);
return 0;
}
EDIT
Explanation:
We can read input up to a specific character/characters using %[^<Your character(s)>]. The number 49 here simply refers to the length of string you'd receive and the last character is a null. Adding specific length is up to you ;) This is just one example of getting input the way you asked.
My goal with this program is to incorporate the users inputs into a sort of interactive/randomized story but I'm not sure how I'm supposed to get the inputs from the users to fit between *ptrDescription, *ptrBeginning, *ptrMiddle, and *ptrEnd. Any help would be much, much appreciated!
#include <stdio.h>
#include<stdlib.h>
#include<time.h>
#include <string.h>
#include <ctype.h>
int main(void){
int i;
char name[20];
char color[20];
int age;
char sentence[1];
//array of pointers to char arrays
char *ptrDescription[]={"the painfully handsome","the one and only","who seemed much older than"};
char *ptrBeginning[]={"was blissfully ignoring","could clearly see","had no idea"};
char *ptrMiddle[]={"the huge truck","the falling meteor","the bucket of milk","the mailman","the most powerful wizard"};
char *ptrEnd[]={"that was barreling toward them.","on the horizon."};
srand(time(NULL));
printf("Enter your first name: ");
scanf("%s", &name);
printf("\nEnter your age: ");
scanf("%d", &age);
printf("\nEnter your favorite color: ");
scanf("%s", &color);
for (i = 0; i < 1; i++)
{
//strcpy(sentence,ptrDescription[rand()%3]);
//strcat(sentence," ");
//strcat(sentence,ptrBeginning[rand()%3]);
//strcat(sentence," ");
//strcat(sentence,ptrMiddle[rand()%5]);
//strcat(sentence," ");
//strcat(sentence,ptrEnd[rand()%2]);
//strcat(sentence,".");
//sentence[0]=toupper(sentence[0]);
puts(sentence);
}
getch();
return 0;
}
EDIT:
I've edited a section of my code so that directly following for (i = 0; i < 1; i++) it now looks like this:
snprintf(sentence, sizeof sentence,"%s, %s %d year old, %s %s %s %s", name, ptrDescription[rand()%3], age,ptrBeginning[rand()%3], ptrMiddle[rand()%5], ptrEnd[rand()%2]);
There are tons of strange characters after the sentence in the output, like Japanese characters and stuff. I'm not sure why they're there, though. This is what it looks like exactly:
"Enter your first name: Justin
Enter your age: 20
Justin, the arrogant 20 year old, was purposefully ignoring the most powerful wizard that was barreling toward them. 汽$0HβHζ(テフフフフフフフフフフフフフH・(DキHH広$0陏&・汽$0タHζ(テフフフフフフフフフフフフフフフH WH・ H櫛H・t9HνHテ<"
Anyone know how I can get rid of them?
If you already have a name and an age, it's just a matter of inserting them into the correct place in sentence, right? So strcat(sentence, name) would work for name. age is a little trickier since you have to format the number first, and strcat won't do it for you. One solution would be to use sprintf(buf, "%d", age), and then concatenate buf (which is a scratch char array you would have to declare).
Any time you work with strings in C, you have to be concerned about having enough space in the target buffer. Your program can run out of space during both input and output. For the output, I would get rid of sentence altogether; since you just end up writing to stdout I would printf("%s", [part]) each part as you go along. For reading, scanf supports adding a length argument to the format string.
If you use one of the *printf functions, there are 2 things you must be careful about:
The arguments you pass are correct for the format string you use
Your buffer ends up null-terminated
Your current problem is with #1 - your format string promises 7 arguments to follow, but you only supply 6. snprintf grabs a "random" 7th value from the stack, interprets it as a char pointer, and copies whatever it finds there to sentence. You could see similar problems if your format string promised a char pointer but you placed an int in a given position. In this case the format string is a constant, so a smart compiler can validate that your format string matches the subsequent parameters. You'll want to get into the habit of taking compiler warnings seriously and not ignoring them.
The second point could be an issue if your sentence ended up bigger than your sentence buffer. If there is no room for a null-terminator, one won't be applied. You can check the return value of snprintf, or you can defensively always write a 0 to the last array position.
Here you can see my source code:
#include <stdio.h>
int main()
{
char yourname;
char yoursex;
int yourage = 0;
printf("Hey, what's your name?\n");
printf("My name is: ");
scanf("%s", &yourname);
printf("Oh, hello %s! \n\n", &yourname);
printf("Are you a boy or a girl?: ");
scanf("%s", &yoursex);
printf("Nice to know you are a %s! \n\n", &yoursex);
printf("How old are you %s? I am ", &yourname);
scanf("%d", &yourage);
printf("I see you are %d, you have many years then!", &yourage);
return 0;
}
I was trying things that I didn't knew, and strangely it is not working for me. What's the problem? Also, why it needs to be %s and not %c? If I use %c instead it does not work!
Where it says:
How old are you %s? instead of putting my name, it says ''oy''
and instead of showing my age in the last line, it shows a big number.
These are the very basics of C Programming, and I strongly advise you to get a decent book - The C Programming Language by Dennis Ritchie would be a good start.
There are numerous errors in your code.
A char can contain only one character, like 'A', or 'a' or something like that. When you're scanning a name, it is going to be a group of characters, like 'E', 'd', 'd', 'y'. To store multiple characters, you need to use a character array. Also, the format specifier used to scan/print characters is %c, %s is for when you need to scan a group of characters, also called a string into an array.
When you use printf, you do not supply a pointer to the variable you are trying to print (&x is a pointer to variable x). The pointer is a 32/64-bit integer, which is likely why you see a random integer when trying to print. printf("%c\n", charVar) is sufficient.
scanf does not need an & while using %s as the format specifier, assuming you have passed a character array as the argument. The reason is, scanf needs to know where to store the data you are reading from the input - and that is given by a pointer to the memory location. When you need to scan an integer, you need to pass an &x - which means, pointer to memory location of x. But when you pass a character array, it is already in the form of a memory address, and doesn't need to be preceded by an ampersand.
I once again recommend you look up some decent tutorials online, or get a book (the one I mentioned above is a classic). Type the examples as given in the material. Experiment. Have fun. :)
%s is for reading a string -- multiple characters delimited by whitespace. %c is for reading a single char.
You declare your yourname and yoursex vars as characters, and then try to read strings into them. The string read will overwrite random other things in the stack frame and misbehave or crash.
You want to declare yourname and yoursex as character arrays, so they can hold strings:
char yourname[32];
char yoursex[32];
then, when reading into them, you want to include a length limit so they don't overflow:
scanf("%31s", yourname);
This is a single character:
char yourname;
But %s indicates that the variable is a string (i.e., an array of characters terminated by a NUL). That's why you need %c. If you really did mean to use a string, then define the variable like
char yourname[32]; /* just pick a big enough size */
Also, you are correct to use the address of the variable with scanf(), but printf() needs the value. So instead of
printf("I see you are %d, you have many years then!", &yourage);
use
printf("I see you are %d, you have many years then!", yourage);
The "big number" is the memory address.
Make sure you read the comments in code!
#include <stdio.h>
int main()
{
char yourname[10];
char yoursex[5]; // boy or girl + null terminator
int yourage = 0;
printf("Hey, what's your name?\n");
printf("My name is: ");
scanf("%s", &(*yourname)); // & and * cancel each other out,
// thus take a look at the next scanf()
printf("Oh, hello %s! \n\n", yourname); // yourname is now an array
printf("Are you a boy or a girl?: ");
scanf("%s", yoursex);
printf("Nice to know you are a %s! \n\n", yoursex);
printf("How old are you %s? I am ", yourname);
scanf("%d", &yourage); // ok
printf("I see you are %d, you have many years then!", yourage); // here you don't
// need the address of the variable!
return 0;
}
The expression char yourname; only holds space for a single character, so quite likely you end up corrupting the memory space when scanning for yourname. You should allocate a bigger buffer and make sure that you don't overrun its length by setting a maximum number of characters to be read with the scanf function; as described in some of the other answers.
The fact that the following printf print correctly the name doesn't mean that the memory doesn't get corrupted; as C/C++ don't really check the boundary of any strings or arrays used at runtime.
As suggested by others, starting by reading a good book about C and/or C++ wouldn't a bad idea.
I've been trying to look for answer myself, but I can't find one.
I want to insert a part of the programming that reads in a string like "Hello" and stores and can display it when I want, so that printf("%s", blah); produces Hello.
Here's the code part that's giving me trouble
char name[64];
scanf_s("%s", name);
printf("Your name is %s", name);
I know that printf isn't the problem; the program crashes after something is input after a prompt. Please help?
From the specification of fscanf_s() in Annex K.3.5.3.2 of the ISO/IEC 9899:2011 standard:
The fscanf_s function is equivalent to fscanf except that the c, s, and [ conversion
specifiers apply to a pair of arguments (unless assignment suppression is indicated by a
*). The first of these arguments is the same as for fscanf. That argument is
immediately followed in the argument list by the second argument, which has type
rsize_t and gives the number of elements in the array pointed to by the first argument
of the pair. If the first argument points to a scalar object, it is considered to be an array of
one element.
and:
The scanf_s function is equivalent to fscanf_s with the argument stdin
interposed before the arguments to scanf_s.
MSDN says similar things (scanf_s() and fscanf_s()).
Your code doesn't provide the length argument, so some other number is used. It isn't determinate what value it finds, so you get eccentric behaviour from the code. You need something more like this, where the newline helps ensure that the output is actually seen.
char name[64];
if (scanf_s("%s", name, sizeof(name)) == 1)
printf("Your name is %s\n", name);
I used this very often in my university classes so this should work fine in Visual Studio (tested in VS2013):
char name[64]; // the null-terminated string to be read
scanf_s("%63s", name, 64);
// 63 = the max number of symbols EXCLUDING '\0'
// 64 = the size of the string; you can also use _countof(name) instead of that number
// calling scanf_s() that way will read up to 63 symbols (even if you write more) from the console and it will automatically set name[63] = '\0'
// if the number of the actually read symbols is < 63 then '\0' will be stored in the next free position in the string
// Please note that unlike gets(), scanf() stops reading when it reaches ' ' (interval, spacebar key) not just newline terminator (the enter key)
// Also consider calling "fflush(stdin);" before the (eventual) next scanf()
Ref: https://msdn.microsoft.com/en-us/library/w40768et.aspx
The scanf_s function is equivalent to scanf except that %c, %s, and %[ conversion specifiers each expect two arguments (the usual pointer and a value of type rsize_t indicating the size of the receiving array, which may be 1 when reading with a %c into a single char)
Your code doesn't provide the size of receiving array, also the variable name is a pointer pointing to the first character of the array, so it contains the address of name[0]. Therefore your first argument name in scanf_s is correct because name is a pointer, also note that, for the second argument you can't insert the size of a pointer like sizeof(name) because it is always same. You need to specify the size of your char array (name[64]), so for the second argument you should insert sizeof(name[64]) or 64*sizeof(char).
You can correct your code as follows:
char name[64];
if (scanf_s("%s", name, sizeof(name[64])) == 1)
printf("Your name is %s\n", name);
Here is a part of code that works for me fine:
char name[64];
scanf_s("%63s", name,(unsigned)_countof(name));
printf("Your name is %s", name);
For more information here is a link:
https://learn.microsoft.com/de-de/cpp/c-runtime-library/reference/scanf-s-scanf-s-l-wscanf-s-wscanf-s-l?view=msvc-170
Best Regards
#include<stdio.h>
int main()
{
char name[64];
printf("Enter your name: ");
scanf("%s", name);
printf("Your name is %s\n", name);
return 0;
}
#include<stdio.h>
int main()
{
char name[64];
printf("Enter your name: ");
gets(name);
printf("Your name is %s\n", name);
return 0;
}
you should do this : scanf ("%63s", name);
Update:
The below code worked for me:
#include <stdio.h>
int main(void) {
char name[64];
scanf ("%63s", name);
printf("Your name is %s", name);
return 0;
}
if you are using visual studio,
go to Project properties -> Configuration Properties -> C/C++-> Preprocessor -> Preprocessor Definitions click on edit and add _CRT_SECURE_NO_WARNINGS click ok, apply the settings and run again.
Note: this is only good if you are doing your homework or something like that and it's not recommended for production.
int main()
{
//Define Variables
char studentName;
//Print instructions to fill the data in the screen
printf("Please type in the Students name:\n");
scanf("%s", &studentName);
printf("\n\n%s", &studentName);
return 0;
}
Seeing the above code, I am only printing to screen out the first word when I type in a sentence.
I know it is a basic thing, but I am just starting with plain C.
Read scanf(3) documentation. For %s is says
s Matches a sequence of non-white-space characters; the next
pointer must be a pointer to character array that is long
enough to hold the input sequence and the terminating null
byte ('\0'), which is added automatically. The input string
stops at white space or at the maximum field width, whichever
occurs first.
So your code is wrong, because it should have an array for studentName i.e.
char studentName[32];
scanf("%s", studentName);
which is still dangerous because of possible buffer overflow (e.g. if you type a name of 32 or more letters). Using %32s instead of %s might be safer.
Take also the habit of compiling with all warnings enabled and with debugging information (i.e. if using GCC with gcc -Wall -g). Some compilers might have warned you. Learn to use your debugger (such as gdb).
Also, take the habit of ending -not starting- your printf format string with \n (or else call fflush, see fflush(3)).
Learn about undefined behavior. Your program had some! And it misses a #include <stdio.h> directive (as the first non-comment significant line).
BTW, reading existing free software code in C will also teach you many things.
There are three problems with your code:
You are writing a string into a block of memory allocated for a single character; this is undefined behavior
You are printing a string from a block of memory allocated for a single character - also an undefined behavior
You are using scanf to read a string with spaces; %s stops at the first space or end-of-line character.
One way to fix this would be using fgets, like this:
char studentName[100];
//Print instructions to fill the data in the screen
printf("Please type in the Students name:\n");
fgets(studentName, 100, stdin);
printf("\n\n%s", &studentName);
return 0;
Try scanf("%[^\n]", &studentName); instead of scanf("%s", &studentName);
This is happening because %s stops reading the input as soon as a white space is encountered.
To avoid this what you can do is declare an array of the length required for your string.
Then use this command to input the string:-
scanf("%[^\n]s",arr);
This way scanf will continue to read characters unless a '\n' is encountered, in other words you press the enter key on your keyboard. This gives a new line signal and the input stops.
int main()
{
//Define Variables
char studentName[50];
//Print instructions to fill the data in the screen
printf("Please type in the Students name:\n");
scanf("%[^\n]s", &studentName);
printf("\n\n%s", &studentName);
return 0;
}
Alternatively you can also use the gets() and puts() method. This will really ease your work if you are writing a code for a very basic problem.
[EDIT] : As dasblinkenlight has pointed out...I will also not recommend you to use the gets function since it has been deprecated.
int main()
{
//Define Variables
char studentName[50];
//Print instructions to fill the data in the screen
printf("Please type in the Students name:\n");
gets(studentName); printf("\n\n");
puts(studentName);
return 0;
}
make the changes below and try it. I added [80] after the studentName definition, to tell the compiler that studentName is an array of 80 characters (otherwise the compiler would treat it as only one char). Also, the & symbol before studentName is not necessary, because the name of the array implicitly implies a pointer.
int main()
{
//Define Variables
char studentName[80];
//Print instructions to fill the data in the screen
printf("Please type in the Students name:\n");
scanf("%s", studentName);
printf("\n\n%s", studentName);
return 0;
}
Your problem is here
char studentName;
It is a char, not a string.
Try:
Define it as an array of chars like char studenName[SIZE];.
allocating memory dynamically using malloc:
.
char buffer[MAX_SIZE];
scanf("%s", &buffer);
char * studentName = malloc (sizeof(buffer) + 1);
strcpy (studentName , buffer);