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74

According to the Go specification: For an expression x of interface type and a type T, the primary expression x.(T) asserts that x is not nil and that the value stored in x is of type T. A "type assertion" allows you to declare an interface contains a certain concrete type or that its concrete type satisfies another interface. In your example, you ...


57

For comprehensions are converted into calls to the map or flatMap method. For example this one: for(x <- List(1) ; y <- List(1,2,3)) yield (x,y) becomes that: List(1).flatMap(x => List(1,2,3).map(y => (x,y))) Therefore, the first loop value (in this case, List(1)) will receive the flatMap method call. Since flatMap on a List returns another ...


19

It's an unwanted case of incomplete tree traversal. The signature of getOrElse allows type widening, so when it realizes that String is not Option[String] it first tries to fill in a different type ascription on getOrElse, i.e. Serializable. But now it has "a".getOrElse[Serializable]("") and it's stuck--it doesn't realize, I guess, that the problem was ...


17

An easy tip to remember, for comprehensions will try to return the type of the collection of the first generator, Option[Int] in this case. So, if you start with Some(1) you should expect a result of Option[T]. If you want a result of List type, you should start with a List generator. Why have this restriction and not assume you'll always want some sort ...


11

Ah --- found it. The ServiceModel section in the website's web.config was set to customBinding. Changed it so it matched what the client was sending, and now it works beautifully.


11

The problem is that you're shadowing the trait's type parameter with the T on the add and get methods. See my answer here for more detail about the problem. Here's the correct code: trait Tray[T] { val tray = ListBuffer.empty[T] def add (t: T) = tray += t // add[T] --> add def get: List[T] = tray.toList // get[T] --> add } object Test ...


10

To unpack a sequence into the argument list, use _* scala> f(xs: _*) res1: Int = 0


9

Firstly, the error message is misleading. scalac tries to find a method + on value x. This doesn't exist on type T, which could be any type whatsoever. This is called an unbounded type parameter. So it tries to apply and implicit view. Predef.any2stringadd fits the bill. You can disable this implicit conversion, and see the real error: ~/code/scratch: cat ...


9

nextInt doesn't swallow the end of line, that stays in the buffer. So when you hit 1enter, 1 is read into the first score, then the second name is set to an empty string. Then the parser tries to interpret second as an int, raising the exception. You'll need to discard the current line after the readInt.


9

The problem in your code is type parameter shadowing. You have: class ThreeStacks[A, B, C](val stackSize:Int = 1000) { def push1[A](value: A): Unit = stack1.push(value) ... } It should be: class ThreeStacks[A, B, C](val stackSize:Int = 1000) { def push1(value: A): Unit = stack1.push(value) ... } The way you have done it, type parameter A of ...


8

The problem is that when you call ColorBurn and ColorDodge, one of the template arguments is a float and the other is a double: ColorBurn(base, (2.0 * blend)) Here, base is a float, and the expression 2.0 * blend is a double (because 2.0 is a double constant, so the whole expression becomes double). Now, the compiler can't decide whether to instantiate ...


7

You cannot Assign/Check values of range like this for what you are trying to do. One way would be to loop through your range. For Example Private Sub CommandButton1_Click() Dim Rng As Range, aCell As Range Set Rng = Range("A1:A10") For Each aCell In Rng If aCell.Value > 0 Then aCell.Offset(, 1).Value = "check" ...


7

With def incr[Int] you've defined an arbitrary type with the name Int, which overrides the existing one. Get rid of the [Int] type parameter and it works fine, or use a different name like T.


7

This is because higher Operator Precedence of equality v/s assignment From the Documentation: When operators of equal precedence appear in the same expression, a rule must govern which is evaluated first. All binary operators except for the assignment operators are evaluated from left to right; assignment operators are evaluated right to left. ...


6

In your helper class you define the type B in the class initialization. But that type is unknown until the method > or < usage. My solution would be this. implicit class RichList[A](input: List[A]) { def >[B](that: List[B]): Boolean = input.size > that.size def <[B](that: List[B]): Boolean = input.size < that.size } Edit Since you ...


6

First: class CustomList<T extends A> extends ArrayList<T> Second: class A { public boolean getCustomBoolean() { return true; } } Third: class A1 extends A { } Result: CustomList<A1> customList = new CustomList<A1>(); customList.add(new A1()); for (A1 obj: customList) { ...


6

The signature of (:) is a -> [a] -> [a]. Therefore, you cannot have lists on both sides of the operator. That's the cause of your error. You could instead use (++), which has the signature [a] -> [a] -> [a].


6

Can anyone see my mistake. I can see quite a lot of mistakes. But I also see some good stuff like use strict and use warnings. My suggestion for you is to work on your coding style so that it gets easier for you and others to debug any problems. Naming variables my $NODE = `uname -n`; my $a = "/tmp/"; my $b = $NODE ; my $c = "_deco.txt"; my $d = ...


6

you are using Month as both the name of a function and the name of a variable................give the variable a different name.


6

It's not really a generics issue. Your problem is that you're assigning an object of a less specific type to a variable of a more specific type. You'd have the same problem if you tried to assign an Object to a String variable, even though String extends Object. You should, however, be able to write Box<Tool> box = new Toolbox(); with the class ...


5

Check the vt member.


5

Looks like this is a defect in hibernate version 3.2.6 which is still not resolved. Came across this JIRA. Having multiple @Id is supported by Hibernate but seems it fails under one to one mapping, suggested way of resolving this is to use single CompositeKey, which means you create a PK class import java.io.Serializable; import javax.persistence.Column; ...


5

Sometimes its best to just re-read the error very carefully. Consider this chunk of VBS: DoStuff("Hello World") Since DoStuff is not defined nor is there an Option Explicit I get: Error: Type mismatch: 'DoStuff' Your error is: Type mismatch: 'UnChkString'. Its not complaining about the parameter being passed its complaining about UnChkString ...


5

You can stick a type parameter on the ModB types: class ModA { trait A } class ModB[AA](val modA: ModA { type A = AA }) { trait B { def getA: AA def setA(anA: AA) } } class ModAImpl extends ModA { class AImpl extends A } class ModBImpl[AA]( mod: ModA { type A = AA }) extends ModB(mod) { class BImpl extends B { private[this] var privA: ...


5

You can't access cell.value from .Columns(1) as it returns a range encompassing the entire column, instead; For Each cell In Sheet1.Columns(1).Rows '//or .cells Probably a good idea to exit the for loop after a match too.


5

As you have stated that you are new to vbscript, and you appear to be new to Stack Overflow, I thought I would try to offer you some assistance. It is not necessary for you to store the entire file as an array. All you need to do is process your input file line by line as text: check if each line of text exists as a filename. Let's assume the following ...


5

The error here is unrelated to the loop itself. You are using main as a value, but it should be a function from array of strings into int. [<EntryPoint>] let main args = // Your stuff here 0 where args will be inferred as string[]. If you are feeling verbose, you can spell it out: [<EntryPoint>] let main (args : string[]) = // ...


5

while ( (line = myReader.readLine()) != null ) { will do. you forgot to put () correctly. The problem was, myReader.readLine() != null part was evaluated first.


5

A proper definition should consist of a pair of mutually recursive functions, one for folding trees and one for folding forests (lists of trees): foldtree :: (a -> c -> b) -> (b -> c -> c) -> c -> Treeof a -> b foldtree f g a (Node label subtrees) = f label (foldforest f g a subtrees) foldforest :: (a -> c -> b) -> (b -> ...


5

If (f >= f1) & (f <= F2) Then should be If (f >= f1) And (f <= F2) Then



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