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Why is the value of n changing to garbage inside the for-loop? (I'm new to C language, I come from a C++ background)

float n = 3.0;
printf ("%f\n", n);
for (; n <= 99.0; n += 2)
    printf ("%f\n", &n);

enter image description here

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You are printing the address of an automatic variable. Remove the ampersand and you will print properly – zz3599 Mar 9 '13 at 5:03
Take away the & from your printf statement in the for loop. – Memento Mori Mar 9 '13 at 5:03
@zz3599 Put as an answer and ye shall receive votes. – Inisheer Mar 9 '13 at 5:04

3 Answers 3

up vote 4 down vote accepted

You are printing the address of n (&n) inside the for-loop. Get rid of the &

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good answer yes – Grijesh Chauhan Mar 9 '13 at 5:07

Your error is in how you're trying to print out n. You're passing the address of the n instead of the value.

You're gaining nothing by using floating point in this case. While it'll work, an int will work just as well:

int n = 3;
printf ("%d\n", n);
for (; n <= 99; n += 2)
    printf ("%d\n", n);

In C it's also more common to use < for your loop termination condition, so something like:

for ( ; n<100; n+=2)

...for the loop condition would usually be preferred.

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error in your for loop condition, you forgot to add suffix f:

do like:

for (; n <= 99.0f; n += 2)

remember: unsuffixed floating-point literals are doubles, which is a more commonly used floating point type than float.

second printf error: @adrianz answers

 printf ("%f\n", &n);
                 ^  remove it
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