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Sorry, I couldnt word the subject particularly well. Quite simply I have an IF statement where I am comparing if three conditions are met;

if(buffer[i] == "N" && (buffer[i+1] == "1"||"2"||"3"||"4"||"5") && buffer[i+2] == " ")

I know that N is always going to be present, the character after that needs to then be a number from 1 to 5, after that is whitespace. This does compile but does not produce any result, at a safe guess I would say it is my horrendous code above.

I should add, this is within a while loop that advances through the buffer until whitespace ends.

Have I over-complicated a simple problem or am I on the right tracks but with crappy syntax?

Thanks for any suggestions or hints.

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turn on your compiler warnings. –  pmg Mar 17 '11 at 15:46
    
They are on but I need to work on my actioning of them. But yes sorry. Thats the second time I have been pointed towards looking at my warnings! I'll try and up the warning level to avoid letting more errors slip through. –  Draineh Mar 17 '11 at 15:49
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5 Answers

up vote 1 down vote accepted

Below two expressions are equivalent. You are ||ing the wrong stuff.

  • (buffer[i+1] == "1"||"2"||"3"||"4"||"5")
  • (((((buffer[i+1] == "1")||"2")||"3")||"4")||"5")

What you are trying to achieve is.

  • (buffer[i+1] >= '1' && buffer[i+1] <= '5')

Also, I believe that your code won't compile because single string elements are of char type. Their literals are represented with '1', '2', 'N' etc.

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Thank you. I always over-complicate something which can be done with much more finesse. –  Draineh Mar 17 '11 at 15:46
    
== has higher precedence than || so the expression is actually equivalent to (buffer[i+1] == "1")||"2"||"3"||"4"||"5" –  JeremyP Mar 17 '11 at 15:51
    
@JeremyP: Thanks! Corrected. –  junjanes Mar 17 '11 at 15:52
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You can't ask

buffer[i+1] == "1"||"2"

you have to ask

buffer[i+1] == "1" || buffer[i+1] == "2"

But if these are C strings, then you can't use == at all -- you have to use the strcmp() function from the standard library, which returns 0 when two strings are equal:

strcmp(buffer[i+1], "1") == 0 || strcmp(buffer[i+1], "2") == 0

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Hi, while it is a string within an array, I can treat each position within the array as a char can't I? –  Draineh Mar 17 '11 at 15:44
    
You can, that's what string is. –  MByD Mar 17 '11 at 15:45
    
Actually, you can ask buffer[i+1] == "1"||"2" but it evaluates as (buffer[i+1] == "1")||"2" and "2" is a constant pointer which is guaranteed to evaluate to true (i.e. it is non zero) so the whole expression is true. Anyway, +1 for the right answer. –  JeremyP Mar 17 '11 at 15:47
    
@Draineh yes you can. –  RedX Mar 17 '11 at 15:47
    
Yes you can -- the double-quotes were throwing me. See MByD's answer above. –  Ernest Friedman-Hill Mar 17 '11 at 15:48
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The 1st comparison should be buffer[i] == 'N' , not buffer[i] == "N" because you want to compare chars, and "N" is a pointer to char, not a char.

The 2nd comparison should be buffer[i+1] >= '1' && buffer[i+1] <='5' for the same reason.

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Doh! Thanks. I'm accepting the above as answer as it directly answered my question first but up-vote for pointing out the mistake! Thanks for the help. –  Draineh Mar 17 '11 at 15:46
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Or doesn't work that way, and neither do string comparisons in C. First of all, you probably wanted to compare to chars.

Secondly, a == b||c||d||e is equivalent to a == (b||c||d||e) which will probably end up being 1.

What you meant to say was (naively) (buffer[i+1] == '1') || (buffer[i+1] == '2') || (buffer[i+1] == '3') ...

An easier way to say it, since you're using ASCII characters, is:

(buffer[i+1] >= '1') && (buffer[i+1] <= '5')

Don't forget to replace "N" and " " with 'N' and ' ', respectively.

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I think I'd use sscanf:

char digit[2];

if (1==sscanf(buffer+i, "N%[12345][ ]", &digit))
    // It matched. `digit` holds the digit we found in string form.
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