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I'm doing the foundation calculator homework from the cs193p course, and my
+evaluateExpression:usingVariables: method doesn't work. It always returns 0.

Here's my method:

+ (double)evaluateExpression: (id)anExpression usingVariablevalues: (NSDictionary *)variables {
CalculatorBrain *worker = [[[CalculatorBrain alloc] init] autorelease];
double returnValue = 10.0;
if ([anExpression isKindOfClass:[NSMutableArray class]]) {
    for (id term in anExpression) {
        NSLog(@"%f", returnValue);         // breakpoint
        if ([term isKindOfClass:[NSString class]]) {                                    // string
            if ([term hasPrefix:@"%"] && [term length] == 2) {                          // variable
                double value = [(NSNumber *)[variables objectForKey:[term substringFromIndex:1]] doubleValue];
                NSLog(@"Variable: %@, value: %d", [term substringFromIndex:1], value);
                [worker setOperand:value];
            }
            else if ([term length] == 1) {                                              // operation
                returnValue = [worker performOperation:term];
            }
            else {
                NSLog(@"Invalid expression.\n\tMultiple character operation found: %@", term);
            }
        }
        else if ([term isKindOfClass:[NSNumber class]]) {                                   // operand
            double value = [term doubleValue];
            [worker setOperand:value];
        }
        else {
            NSLog(@"Invalid expression.\n\tWrong type in expression: %@, The value is: %@.",[term class], term);    // Wrong type in expression
        }

    }
}
else {
    NSLog(@"Invalid expression.\n\tThe expression is of the wrong type: %@.", [anExpression class]);    // expression is of wrong type
}
//returnValue = worker.operand;
return returnValue;
}

Any hints? it always returns 0.

/* Ouput from Console */
2012-06-27 20:01:05.487 Calculator[2823:207] 0
2012-06-27 20:01:05.488 Calculator[2823:207] 0
2012-06-27 20:01:05.489 Calculator[2823:207] 0
2012-06-27 20:01:05.490 Calculator[2823:207] Variable: x, value: 0
2012-06-27 20:01:05.490 Calculator[2823:207] 0
2012-06-27 20:01:05.491 Calculator[2823:207] 0
2012-06-27 20:01:05.491 Calculator[2823:207] 0

Note: I set returnValue to 10.0 at the beginning to check if it is getting changed at all.

Update:

I found out that it gets 0 from the dictionary. I think the calling code is the cause:

- (IBAction) performSampleExpression {
    NSMutableArray *expr = [[NSMutableArray alloc] init]; 
    [expr addObject:[NSNumber numberWithDouble:3.0]];
    [expr addObject:@"+"];
    [expr addObject:@"%x"];
    [expr addObject:@"*"];
    [expr addObject:[NSNumber numberWithDouble:4.0]];

    NSDictionary *varsdict = [NSDictionary dictionaryWithObjectsAndKeys:[NSNumber numberWithDouble:10.0], @"x", nil];

    double result = [CalculatorBrain evaluateExpression:expr usingVariablevalues:varsdict];
    if (!result) NSLog(@"result = nil");
    NSLog(@"%f", result);

    display.text = [NSString stringWithFormat:@"%f", result];
    [expr release];
}

Result isn't nil though.

Update 2:

Using the debugger (nice hint. This might solve it.) I found something strange:

On this line: (first time)

returnValue = worker.operand;

It says returnValue is still 10, and not three (worker.operand IS).
Is the assignment failing, or is this how it should be? (Just wondering).

UPDATE 3:

Okay there is something very strange going on here: I set a breakpoint on the return statement, the last line of +evaluateExpression:usingVariables:, and it says
returnValue = 4.
This means, the actual problem lies in -performSampleExpression. What am I doing wrong?

UPDATE 4:

Changing @"%d", double into @"%f", double helped a lot. That explains the strange Console output. But, it solved it, because I updated the display like display [setText:@"%d", result]; what caused my double to be displayed as 0 due to a wrong cast.
I discovered this by using the debugger, so the one who suggested that practically solved it. (And I asked for hints, not for solutions. After all, homework is to learn from).

share|improve this question
1  
What should your input look like? –  Dan F Jun 27 '12 at 13:48
3  
Hint: step-by-step debugging –  hamstergene Jun 27 '12 at 13:51
    
Looks like an issue in CalculatorBrain. –  trojanfoe Jun 27 '12 at 13:55
    
@trojanfoe no, calculatorbrain is working fine. Then it must be in how I am using it. But I couldn't find something like that. –  11684 Jun 27 '12 at 14:06
    
@hamstergene how should I do that? –  11684 Jun 27 '12 at 14:07

3 Answers 3

up vote 1 down vote accepted

The possible issues can shown in:

 returnValue = [worker performOperation:term];

and

returnValue = worker.operand;

You should stop debugger in this line (or line below) and watch how to your value of returnValue change.

Screen

You stop app clicking on position where it is on the screen, app stops, and then jump to next line with F6 (or Fn+F6). Below (in console) you can see the value.

EDIT

You could try this solution - Change allocation to:

CalculatorBrain *worker = [[[CalculatorBrain alloc] init] autorelease];

And delete line:

 [worker release];

This release right before return may couse the problem without NSCopying @protocol.

Autorelease and NSCopying

For better understanding compile this code:

NSMutableArray *arrOne = [[NSMutableArray alloc] initWithObjects:@"1",@"2", nil];
NSMutableArray *arrTwo = [[NSMutableArray alloc] init];

arrTwo = arrOne;
[arrOne addObject:@"3"]; //After that arrTwo "shold" be 1,2 and arrOne 1,2,3. No! There both 1,2,3!

for(int i=0;i<[arrTwo count];i++)
    NSLog(@"%@",[arrTwo objectAtIndex:i]);

So you may consider how you assign a variable. In above example releasing memory shouldn't effect return values, but by using autorelease with return object you don't have to assign anything.

share|improve this answer
    
Thanks for suggesting using debugger! Changing the memory management didn't help though. Because 2 people suggested this, could you explain why? I don't wuite understand it. –  11684 Jun 27 '12 at 19:36
    
autorelease release memory when object is no longer necessary. For example when you leave a loop, method or something like that, depends on implementation. If you want to release something right after return you have a problem. Couse Foo *bar = [[Foo alloc] init]; initialize an object, but what if you have in method: Foo *bar = [[Foo alloc] init]; return bar. This is a leak!! But if you declare it like Foo *bar = [[[Foo alloc] init] autorelease]; return bar memory will be release right after return, so you get your value and ther is no memory leak! Cheers! –  Kuba Jun 28 '12 at 1:29
    
I had no leak... Perhaps a typo in the question. –  11684 Jun 28 '12 at 7:12
    
no, I had no leak. I released it right before the return statement. –  11684 Jun 28 '12 at 7:17
    
No, no i don't say you do in your code, I mean that if you alloc like above example. assign a pointer is NOT like c++ pointer assign. I;m now editing my answer, there code will look better –  Kuba Jun 28 '12 at 9:42

I'm seeing a little memory leak in your code:

so, instead of this: [worker release];

try this line: [worker autorelease];

I'm not sure it caused the problem but your version definitely does not look good.

share|improve this answer
    
Why? I don't quite understand. I should release it, don't I? –  11684 Jun 27 '12 at 17:50
    
Didn't work. Updated code in question. –  11684 Jun 27 '12 at 18:00
    
Okay, I think I understand that returnValue could be a pointer to, but it was a double and not a double *. –  11684 Jun 27 '12 at 19:02

Have you tried stepping through the code a line at a time and examining the variable values?

share|improve this answer
    
This helped too. +1 –  11684 Jun 27 '12 at 19:37

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