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In the following statement I attempt to scan a word from the user, and compare it to 2 char's. Is this ok? I attempted to delete this question.

scanf("%s", Word);

if(Word[j] == 'a' || 'A'){
    

    flag =1;
}
  • Assuming there is an array Word[10] and using a while does that improve the situation. I – 123 Jul 3 at 19:53
  • 1
    Delete the question if you want, but don't vandalize it. – ikegami Jul 3 at 19:58
  • You cannot delete this question as others have invested time and effort into answering it. For more information – 123 Jul 3 at 20:00
1

You want to say

if(Word[j] == 'a' || Word[j] == 'A'){
| improve this answer | |
0

In C, the expression

Word[j] == 'a' || 'A'

is interpreted as

(Word[j] == 'a') || ('A')

In other words, this means "compare Word[j] to 'a'. If they match, great! Otherwise, evaluate the expression 'A' and see if it's nonzero." That's not what you meant to do, and this expression will as a result always evaluate to true.

To fix this, rewrite the expression as

if (Word[j] == 'a' || Word[j] == 'A') {
    ...
}

Or, alternatively, as

if (tolower(Word[j]) == 'a') {
    ...
}

Hope this helps!

| improve this answer | |
0

You want

Word[j] == 'a' || Word[j] == 'A'

== is a binary operator, which means it has (exactly) two operands. As such,

Word[j] == 'a' || 'A'

is equivalent to

( Word[j] == 'a' ) || 'A'

|| returns 0 if both of its operands are 0, 1 otherwise. (It only evaluates its right-hand side operand if necessary.)

Since its right-hand side operand is always true ('A' is a number other than zero), the condition will always be true.

| improve this answer | |

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