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So I have to make a simple calculator in Perl that maintains an accumulator and does simple operations. The accumulator starts at 0 and then changes based on the results that I receive. At the moment I am only trying to get addition to work. When I check to ensure that the operator entered is + something goes wrong. For instance:

Accumulator: 0
Operator: Anything put here results in addition. Including this sentence.
Operand: 4

Accumulator: 4

It catches numbers but nothing else. I have tried using grep and a list of the operators. I have exhausted all of my ideas. Here is my code (Fyi first post so help me with any noob errors):

my $running = 1;
my $accum = "0";
my $operator;
my $operand;

print("Welcome to the simple, command line calculator.\n");
print("To terminate, press Control-C.\n\n");

while ($running){

    print("\nAccumulator: ".$accum."\n");
    print("Operator: ");
    $operator = <STDIN>;
    if ($operator == "+"){
            print("Operand: ");
            operand = <STDIN>;
            $accum += $operand;
    }
    else{
        print("Invalid operator: ".$operator."\n");
    }
}
share|improve this question
1  
You forgot use warnings FATAL => "all";. – tchrist Apr 6 '11 at 1:45
    
Hey, did you notice that in line 16 you omitted the "$" sigil from the variable $operand? That can't help. – Tom Williams Apr 6 '11 at 1:53

Perl doesn't remove the ending newline from input unless you use the -l option, so you're comparing "+" against "+\n". Usually you want to do soemthing like chomp($operator);.

That said, your real problem is that == does numeric comparison, and both "+" and "+\n" evaluate to 0 in numeric context. (Using -w, as you should always do, would warn you about this.) Use the eq operator for string comparison.

share|improve this answer
    
+1 for mentioning chomp (and -w) as well. – cHao Apr 6 '11 at 1:48
4  
Don't use -w, use the warnings pragma is better. See the perldoc for perllexwarn for discussion - perldoc.perl.org/perllexwarn.html – daotoad Apr 6 '11 at 3:32
    
@daotoad: That depends on the perl version; in the versions of 5.8 I've had to use in some places, -w catches some things use warnings doesn't. (This was clearly a bug in those versions, as it works as expected in 5.10+.) – geekosaur Apr 6 '11 at 3:36
1  
Perl 5.6 added lexical warnings, and there were a bunch of issues with Perl 5.6.0. I haven't ever had any problems with lexical warnings under the 5.8.x series. As people still seem to use these old versions, I'd love to see examples of warnings that get missed. – daotoad Apr 6 '11 at 3:55
    
@daotoad: I'd have to reinstall 5.8 to get them again. I have (through both some luck and some deliberate wrangling) never had to deal with any 5.6 release; I was seeing these on MacPorts' 5.8.9. (I should mention that the flip side of that was being stuck with 5.00503 for far too long....) – geekosaur Apr 6 '11 at 3:58

== compares numbers, not strings. If you compare strings, the strings will be converted to numbers; for non-numeric strings, this means they become 0. So $operator == "+" becomes 0 == 0.

For strings, use eq instead. Additionally, keep in mind that <STDIN> will preserve newlines; make sure to chomp $operator as well.

share|improve this answer
    
I tried that but it still did not work. It just tells me that everything is an invalid operator including + – Betterthanyoda56 Apr 6 '11 at 1:41
1  
perl -e 'print("a random string" == 0, "\n")'. Strings that don't start with a number become 0 when converted to numbers, even though they're truthy in other contexts. – cHao Apr 6 '11 at 1:44
    
@Better: See geekosaur's answer. The numeric vs string issue was only half the problem. – cHao Apr 6 '11 at 1:54
    
Fixed! Thank you all! – Betterthanyoda56 Apr 6 '11 at 2:32

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