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5

Having the bitwise operators behave consistently (always convert their operands to numbers) seems like a sufficiently good reason for them to be specified the way they are. A few years ago there was talk on the es-discuss list about adding ||= and similar shorthand operators, but Eich & Co are very conservative about adding things like that and ...


4

Try char *sptr = buffer; bool *bptr = boolList; while (*sptr != '\0') *bptr++ = *sptr++ == '1'? 1:0;


2

If the string length is always 1039680 characters like you said then why do you use strlen(buffer) in your code? Why don't just loop BUFFERSIZE times? And you should cache the result like others said instead of calling it again and again each loop. More importantly you haven't included space for the NULL termination byte in the buffer, so when you read ...


2

You are setting true to isSelected(). However, based on your description, you want to check if it was selected. Use: if ( displacement.isSelected()) { } Instead of: if ( displacement.setSelected(true)) { }


2

The function filter (id) will filter out all Falses from a list. filter has the type filter :: (a -> Bool) -> [a] -> [a] Since xor says explicitly it takes an argument of type [Bool], we can say that a is Bool in this case. Substituting back in to filter's type to make it less general we get filter :: (Bool -> Bool) -> [Bool] -> ...


1

Now that the answer is obvious, I would suggest to do this instead def the_flying_circus(): return 5 == 5 Thanks to the Python developers, == returns True and False automatically Or as JonB mentioned in a comment, We can rather hard-code the value def the_flying_circus(): return True As 5 is always equal to 5 No matter what happens on earth.


1

Aside from the nonsensical nature of the question the corrected version would be (assuming it's blackboxed anyway): def the_flying_circus(): return True But in the spirit of meeting CodeAcademy's requirement: def the_flying_circus(): if 5 == 5: return True elif not 5 == 5: return False else: return "Dumb exercise" ...


1

comparison operators are not transitive in C, you should use the Boolean "and" operator && to combine different tests. Also, when posting code here cook it down to a minimal example. Your problem has nothing to do with the fact that this is done for elements of a matrix.


1

you cannot compare like this (grid[i][i] == grid[i+1][i+1] == grid[i+2][i+2]) Use like (grid[i][i] == grid[i+1][i+1] && grid[i][i] == grid[i+2][i+2]) Change your d1 and d2 to d1 = ((grid[i][i] == grid[i+1][i+1] && grid[i][i] == grid[i+2][i+2]) && (grid[i][i] != EMPTY)); d2 = ((grid[i][GRID_SIZE-i-1] == grid[i+1][GRID_SIZE-i] ...


1

In objective-C, booleans could be true/YES or false/NO. However, in swift it is only true or false, so in this case a YES would correspond to true and a NO would correspond to false when translating from objective-C to swift.



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