1

While coding very simple program for removing blanks, tabs, newlines I came across something I don't actually catch on first; even though if condition is true only when tab, space or newline doesn't exist it's still executed with the mentioned for some reason.. here is the code

#include <cstdio>
#include <cstring>
#include <stdio.h>
#include <string.h>

#define LGT 100

void rem(char s[])
{
 int i;
 for(i=(strlen(s)-1);i>=0;i--)
  if(s[i]!=' ' || s[i]!='\t' || s[i]!='\n')
   break;
  s[i+1]='\0';

}
int main(void)
{
 char v[LGT]={"sdsfg\t"};

 rem(v);
 printf("%s\n",v);
 getchar();
}
  • 2
    This != and || is a standard logic problem. You should write down several cases on paper and evaluate them slowly and carefully. – S.Lott Jan 27 '11 at 20:14
  • 3
    This isn't valid C, and just poor C++. Which is it? – GManNickG Jan 27 '11 at 20:38
  • @GMan: it was supposed to be C, after all... – Christoph Jan 27 '11 at 21:30
  • H. Schildt taught me with his astounding "C++ From The Ground Up" :) – highlevelcoder Jun 4 '11 at 10:33
6

The problem is that

  if(s[i]!=' ' || s[i]!='\t' || s[i]!='\n')

Is always true. If s[i] is a space, then the latter two checks are true. If it's not a space, them the first check is true.

To fix this, change these ors to ands:

if(s[i]!=' ' && s[i]!='\t' && s[i]!='\n')

Or, even better, use isspace:

 if(isspace(s[i])
9

s[i]!=' ' || s[i]!='\t' || s[i]!='\n' is always true. A character can't be equal to both a space, a tab and a newline.

  • 6
    for further details, google "DeMorgan's Theorem". – Ben Voigt Jan 27 '11 at 20:14
2

s[i] != x || s[i] != y is true for all different values of x and y.

You probably want &&.

2

If you think about it, any expression like the following is suspect...

a != x || a != y

Whatever a is, it will always not be one thing OR not be another. So this is always true. The equivalent mistake with and is always false rather than always true, and it looks like:

a == x && a == y

It's a little easier to see, right? Thing a can't possibly be both x AND y at the same time. And in fact these statements are related by De Morgan's laws.

Update: So, typically what you want is a != x && a != y. For the second case: a == x || a == y.

  • How would I properly nest those 3 conditions – highlevelcoder Jan 27 '11 at 20:48
  • For the first, you want: a != x && a != y and for the second: a == x || a == y – DigitalRoss Jan 27 '11 at 21:40
0

try changing

if(s[i]!=' ' || s[i]!='\t' || s[i]!='\n')

break;

with

 if(s[i]!=' ' && s[i]!='\t' && s[i]!='\n')
   break;
0

As others already pointed out, your boolean expression is a tautology (ie always true). You might also want to use the function strpbrk() instead of duplicating functionality provided by the standard library:

#include <stdio.h>
#include <string.h>

// …

char text[] = "foo\tbar\n";
char *tail = strpbrk(text, " \t\n");
if(tail) *tail = 0;
printf("<%s>", text); // prints <foo>
Also, when including <c…> headers, you should prefix identifiers with std:: or add a using directive. Alternatively, use <….h> instead. Using functionality not inherited from the C standard library, more idiomatic C++ code would look like this:

#include <iostream>
#include <string>

// …

std::string text = "foo\tbar\n";
std::size_t pos = text.find_first_of(" \t\n");
if(pos != std::string::npos)
    text.erase(pos);
std::cout << '<' << text << '>'; // prints <foo>
  • .c is from the old standard – highlevelcoder Jan 27 '11 at 20:49
  • 1
    @highlevelcoder: then you should definitely use <stdio.h> instead of <cstdio> - the latter shouldn't even compile.. – Christoph Jan 27 '11 at 21:25
  • 1
    @highlevelcoder: C and C++ are different languages - C++ is not an updated version of C! however, the C++ standard library inccorporates the C standard library verbatim when possible – Christoph Jan 27 '11 at 21:37
  • It's true that I'm a beginner but I'm standing with the fact that C++ is just object oriented update of C and it's very much the same with more power and features; stdio.h puts its content into global and cstd into std namespace; H. Schildt in C++ from the ground up at least said that it's ok – highlevelcoder Jan 27 '11 at 21:42
  • 2
    @highlevelcoder: C++ hasn't been 'just an object-oriented update of C' for a long time; in particular, there is quite a lot of legal C code which isn't legal C++; also, the <c…> headers make use of C++-only features, so using them in a C program will most likely fail horribly... – Christoph Jan 27 '11 at 22:01

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