Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

The following Code is part of a C project. The project has a Header File in which two structs are defined and declared. Im german so my text is, but thats only the output and the names of the variables. My problem is: In the case lines a string has to be written in a char array. It gives me the error "Cannot convert char* to char". I put a arrow there. I tried to solve this by using gets, puts or something like that, and I also couldnt find a answer in the internet that helped. Maybe you can help me?

#if !defined(krftst_cpp)
#define krftst_cpp
#include "typ1.h"

krftst()
{
 int antww;
 FILE *datei;

  if((datei = fopen("datei.dat", "r+b")) == NULL)
 {
  fprintf(stderr, "Konnte Datei nicht öffnen");
  return 1;
 }

 printf("   Folgende Kraftstoffe stehen zur Wahl:\n");
 printf("      -1 Super\n");
 printf("      -2 E10\n");
 printf("      -3 Diesel\n");
 printf("      -4 Biodiesel\n");
 printf("      -5 Gas\n\n");
 printf("   Sollten sie ein Elektroauto fahren, geben sie bitte 6 ein.\n");
 printf("   Bei einem Hybridauto normal den Kraftstoff angeben.\n);
 scanf("%d",&antww);

 switch(antww)
 {
  case 1:
         Werte.krftst[20]= "Super";  <--
         break;

  case 2:
         Werte.krftst[20]= "E10";  <--
         break;

  case 3:
         Werte.krftst[20]= "Diesel";  <--
         break;

  case 4:
         Werte.krftst[20]= "Biodiesel";  <--
         break;

  case 5:
         Werte.krftst[20]= "Gas";  <--
         break;

  case 6:
         Werte.krftst[20]="Elektro";  <--
         printf("Geben sie bei Kraftstoffverbrauch statt 'l' 'W' ein, um in Wattt zu rechnen.");
         break;

  default:
   printf("Bitte geben sie nur die Zahlen 1 bis 6 ein!");

 }

}

#endif

The declaration of werte:

struct Daten { 
    char start[20]; 
    char ziel[20]; 
    int km; 
    int vrbr; 
    char dnstf; 
    char name[30]; 
    char knzchn[10]; 
    char krftst[20]; 
    char einh; 
    char dtm[12]; 
}; 
share|improve this question

closed as unclear what you're asking by Bathsheba, BartoszKP, Erik, karthik, Anatoliy Nikolaev Feb 21 at 9:49

Please clarify your specific problem or add additional details to highlight exactly what you need. As it's currently written, it’s hard to tell exactly what you're asking. See the How to Ask page for help clarifying this question.If this question can be reworded to fit the rules in the help center, please edit the question.

2  
Where did you define Werte? More specifically, what is the type of Werte.krftst? –  Oliver Charlesworth Feb 21 at 8:39
    
Werte.krftst[20] will store a charater but by using Werte.krftst[20]= "Super" you are assiging a pointer. –  Rahul Feb 21 at 8:39
    
What is Werte.krftst? Do you want to use strncpy? –  HAL Feb 21 at 8:40
    
stackoverflow is an international community and according to the rules we use English for primary language. Please avoid posting questions with significant part in another language. Also in this case only a small portion of the code is relevant to the question being asked(and a significant part of it is not included in your post). We need to know what is Werte while we don't need 20 lines of logging. –  Ivaylo Strandjev Feb 21 at 8:44
    
Im so sorry, this is the first time im using this site...Im working on this project for weeks now and im very frustrated... –  Chakkoty Feb 21 at 8:49

3 Answers 3

You can assign a string to an array during initialization, but after that you should use strcpy to "assign" strings.

char x[50] = "hello";  // Initializtaion. 

x = "goodbye";      // Not ok. Compile error
x[0] = "goodbye";   // Not ok. Compile error

strcpy(x, "goodbye");       // OK
strcpy(&x[10], "goodbye");  // OK, goodbye\0 will be placed 10 characters into x.

You should use:

strcpy(Werte.krftst, "Super");

If you use strcpy you should

#include <string.h>
share|improve this answer

A char array can be initialized by a string literal only at the point of declaration.

This works:

char foo[50] = "bar";

This (what you effectively did) does not work:

char foo[50];
foo[50] = "bar";

Actually, this is wrong in several ways, not the least of which is an illegal memory access to the non-existing 51st element of foo...

What you need to do is reserve space for the string, either at the point of declaration...

char text[50];

...or dynamically...

char * text;
// ...
text = malloc( 50 );
if ( text == NULL )
{
    // error handling
}

...and then use strcpy() or similar to copy the string into the reserved space.

strcpy( text, "some message" );
share|improve this answer

If you want to store the string in an array after the delaration of an array,use the strcpy function to copy the stirng in array.

 Werte.krftst[20]= "Super"

should be

strcpy(Werte.krftst,"supper");
share|improve this answer
    
This is the file "typ1.h": –  Chakkoty Feb 21 at 8:42
    
check your file typ1.h. what is krftst? –  Rahul Feb 21 at 8:43
    
#if !defined(typ1_h) #define typ1_h struct Daten { char start[20]; char ziel[20]; int km; int vrbr; char dnstf; char name[30]; char knzchn[10]; char krftst[20]; char einh; char dtm[12]; }; struct Rechn { float vrbrPRO; float vrbrG; float kmG; float vrbrEinz; float vrbrPROG; }; struct Rechn Ergebn; struct Daten Werte; extern char Dtpfad; int control; #endif dam* i will write this in a answer –  Chakkoty Feb 21 at 8:43
    
use strcpy(krftst,"Super") –  Rahul Feb 21 at 8:44
    
That was just an example. –  Rahul Feb 21 at 8:48

Not the answer you're looking for? Browse other questions tagged or ask your own question.