6

I'm having trouble figuring out why my float variable keeps printing out 0 when I input it as a number.

Code:

int num, month, day, year;
float price[10000];


printf("Enter item number: \n");
scanf("%d", &num);
printf("Enter unit price: \n");
scanf("%f", &price);
printf("Enter purchase date (mm/dd/yyyy): \n");
scanf("%d/%d/%d", &month, &day, &year);

printf("Item\t\tUnit\t\tPurchase\n");
printf("    \t\tPrice\t\tDate\n");
printf("%d      ", num);
printf("$%.2f     ", price); 
printf("      %d/%d/%d\n", month, day, year);
return 0;

I input 555 for my item number, 13.5 for my price, and 10/24/2010 for my date. When I did this it printed out that my price was $0.00. It does this for any number I input. Why?

1

4 Answers 4

4

You can not insert array value like this -

scanf("%f", &price);

Use a for loop to insert values into the array price -

for(i=0; i<sizeWhatYouWant; i++){
 scanf("%f", &price[i]);
}

Or just change the declaration float price[10000] to -

float price;
2

Just change this:

float price[10000];

to this:

float price;

Because you use it as a single variable and not as an array

3
  • 1
    This is another example of why one should check the warnings that the compiler reports. Jan 28, 2015 at 20:15
  • 1
    @ScottHunter Yep :D, most times the compiler warnings/errors are pretty helpful.
    – Rizier123
    Jan 28, 2015 at 20:16
  • Thanks for the help! I tried looking up the compiler error online, but I had trouble understanding what exactly was wrong.
    – MoreFoam
    Jan 28, 2015 at 21:50
2

There are two things to notice.

  1. change float price[10000]; to float price; as you'll be using only a single float variable, so you don't need an array.

  2. You need to check the return value of scanf() to ensure proper input.

Also, as a note, you might want to initialize the local variables, as they are not automatically initialized.

2

You have declared price as an array you need to do it this way

int num, month, day, year;
float price[10000];


printf("Enter item number: \n");
scanf("%d", &num);
printf("Enter unit price: \n");
scanf("%f", &price[0]); /* <---- it's not &price it's &price[0] */
printf("Enter purchase date (mm/dd/yyyy): \n");
scanf("%d/%d/%d", &month, &day, &year);

printf("Item\t\tUnit\t\tPurchase\n");
printf("    \t\tPrice\t\tDate\n");
printf("%d      ", num);
printf("$%.2f     ", price[0]); /* <---- it's not price it's price[0] */
printf("      %d/%d/%d\n", month, day, year);
return 0;

you have to store the value in the first element of the array, and then print the first element too, i.e. price[0].

If you just want to read a single value, then you don't need to declare price as an array, so this would be the solution

int num, month, day, year;
float price/* [10000] it doesn't need to be an array */;

printf("Enter item number: \n");
scanf("%d", &num);
printf("Enter unit price: \n");
scanf("%f", &price);
printf("Enter purchase date (mm/dd/yyyy): \n");
scanf("%d/%d/%d", &month, &day, &year);

printf("Item\t\tUnit\t\tPurchase\n");
printf("    \t\tPrice\t\tDate\n");
printf("%d      ", num);
printf("$%.2f     ", price);
printf("      %d/%d/%d\n", month, day, year);
return 0;

You was printing the address to the first element of the array instead of the value at that address, and it was being converted to unsigned int or unsigned long int, so when you used the "%f" specifier, it was printing 0.

In both cases:

To prevent this kind of mistake, you should turn your compilers warnings ON, if using gcc

gcc -Wall -Wextra -Werror ${SOURCE_FILES} -o ${OUTPUT_FILE}

would do it.

And also, on invalid input, your program will have undefined behavior, you need to check that scanf() did actually read the value you instructed it to read, that is achieved by checking the return value from scanf() which equals the number of matched items, in your case

if (scanf("%d", num) != 1)
    errorInputWasInvalid();

since you are requesting 1 item, then scanf() has to return 1.

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