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172

My view is to always use ++ and -- by themselves on a single line, as in: i++; array[i] = foo; instead of array[++i] = foo; Anything beyond that can be confusing to some programmers and is just not worth it in my view. For loops are an exception, as the use of the increment operator is idiomatic and thus always clear.


145

I'm frankly confused by that advice. Part of me wonders if it has more to do with a lack of experience (perceived or actual) with javascript coders. I can see how someone just "hacking" away at some sample code could make an innocent mistake with ++ and --, but I don't see why an experienced professional would avoid them.


30

There is a history in C of doing things like: while (*a++ = *b++); to copy a string, perhaps this is the source of the excessive trickery he is referring to. And there's always the question of what ++i = i++; or i = i++ + ++i; actually do. It's defined in some languages, and in other's there's no guarantee what will happen. Those examples ...


28

If you read JavaScript The Good Parts, you'll see that Crockford's replacement for i++ in a for loop is i+=1 (not i=i+1). That's pretty clean and readable, and is less likely to morph into something "tricky." Crockford made disallowing autoincrement and autodecrement an option in jsLint. You choose whether to follow the advice or not. My own personal rule ...


17

http://www.devx.com/tips/Tip/12515 class Date { //... public: Date& operator++(); //prefix Date& operator--(); //prefix Date operator++(int unused); //postfix Date operator--(int unused); //postfix };


13

The "pre" and "post" nature of increment and decrement operators can tend to be confusing for those who are not familiar with them; that's one way in which they can be tricky.


11

Write a version of the same operator overload, but give it a parameter of type int. You don't have to do anything with that parameter's value. If you're interested in some history of how this syntax was arrived out, there's a snippet of it here.


11

As others have noted, the behaviour of this code is undefined in C/C++. You can get any result whatsoever. The behaviour of your C# code is strictly defined by the C# standard. Surely there must be some rationale for both languages to implement it differently? Well, suppose you were designing C#, and wished to make the language easy for C++ ...


10

Haskell's grammar doesn't allow you to use - like that. Use the subtract function instead: (subtract 3) 2


10

First, let's look at operand evaluation order. This isn't defined for many operators, but it is defined for the list operator. It's documented to evaluate its operands in left-to-right order[1]. That means that printf's arguments are evaluated in the following order: "%d %d %d %d" $a ++$a $a++ $a The key lies in knowing that $a doesn't place a copy of ...


9

Consider the following code int a[10]; a[0] = 0; a[1] = 0; a[2] = 0; a[3] = 0; int i = 0; a[i++] = i++; a[i++] = i++; a[i++] = i++; since i++ gets evaluated twice the output is (from vs2005 debugger) [0] 0 int [1] 0 int [2] 2 int [3] 0 int [4] 4 int Now consider the following code : int a[10]; a[0] = 0; a[1] = 0; a[2] = 0; a[3] = 0; ...


8

In my view, "Explicit is always better than implicit." Because at some point, you may got confused with this increments statement y+ = x++ + ++y. A good programmer always makes his or her code more readable.


8

The pre- and post-increment are two distinct operators, and require separate overloads. C++ doesn't allow overloading solely on return type, so having different return types as in your example wouldn't be sufficient to disambiguate the two methods. The dummy argument is the mechanism that the designer of C++ chose for the disambiguation.


7

I've been watching Douglas Crockford's video on this and his explanation for not using increment and decrement is that It has been used in the past in other languages to break the bounds of arrays and cause all manners of badness and That it is more confusing and inexperienced JS developers don't know exactly what it does. Firstly arrays in JavaScript ...


7

Postfix has an int argument in the signature. Class& operator++(); //Prefix Class operator++(int); //Postfix


7

Check your precedence table again. I believe you may be getting confused with the unary address operator & and the binary bitwise-and operator &. See: http://en.wikipedia.org/wiki/Operators_in_C_and_C%2B%2B#Operator_precedence With this interpretation, you increment a before applying the bitwise-and.


6

As a footnote to grddev's answer, here's the relevant paragraph from the Haskell 98 Report: The special form -e denotes prefix negation, the only prefix operator in Haskell, and is syntax for negate (e). The binary - operator does not necessarily refer to the definition of - in the Prelude; it may be rebound by the module system. However, unary ...


5

I think programmers should be competent in the language they are using; use it clearly; and use it well. I don't think they should artificially cripple the language they are using. I speak from experience. I once worked literally next door to a Cobol shop where they didn't use ELSE 'because it was too complicated'. Reductio ad absurdam.


5

(++x)++ increments x by two and returns the value "in the middle" Why not (x += 2) - 1 or (++x, x++)? Both seem to be clearer. For scalars, both are well-defined also in C++03, as opposed to your proposed expression. (++x)-- is essentially equivalent to x+1 but completely avoids having to call operator+, which can be quite useful sometimes. ...


5

It is the boolean operation Negation and thus equivalent to the Ruby keyword not. You can read the line like this: “If the warrior's health is below 20 and the warrior is NOT taking damage then the warrior must rest.”


4

Your C++ code could, in fact, do anything. arr[index] = ++index; invokes undefined behaviour.


4

Fajl operator ++ (int); // postfix Fajl operator ++ (int); // postfix ^^ should be --


4

The prefix operator++ does a single operation -- increment the value. The postfix operator++ does three operations -- save the current value, increment the value, return the old value. The prefix version is conceptually simpler, and is always (up to bizarre operator overloads) at least as efficient as the postfix version.


4

It prints (0,0)(2,2) because your operator ++, unlike the built-in one, returns a copy of the V object it acts upon after incrementing it, rather than before. This is completely under your control when you overload an operator, so it is your responsibility to make it behave like the corresponding built-in operator in this respect. This is how you could ...


4

Another example, more simple than some others with simple return of incremented value: function testIncrement1(x) { return x++; } function testIncrement2(x) { return ++x; } function testIncrement3(x) { return x += 1; } console.log(testIncrement1(0)); // 0 console.log(testIncrement2(0)); // 1 console.log(testIncrement3(0)); // 1 As you can ...


3

The behaviour of using index and ++index inside the same assignment is unspecified in C++. You just can't just do that: write arr[index] = index + 1 and increment your variable after that. For that matter, with my C++ compiler on my machine I see arr[0] = 1, and arr[1] is untouched.


3

Because with prefix you modify the object and then return it (so it can be lvalue), and with postfix you return the unchanged object (i.e. a copy) and only then update it (this is of course done by first storing the copy in a temporary, updating the original object, and then returning the temporary by value.)


3

The postfix increment ++ does not increase the value of its operand until after it has been evaluated. The value of i++ is i. The prefix decrement increases the value of its operand before it has been evaluated. The value of --i is i - 1. Prefix increment/decrement change the value before the expression is evaluated. Postfix increment/decrement change the ...


3

The most important rationale for avoiding ++ or -- is that the operators return values and cause side effects at the same time, making it harder to reason about the code. Of course, if you're not using the return value it is perfectly all right as long as you use the pre- and not the post-operator. Why not use the post-operator standalone? Because the ...



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