I am not able to print array values in swift. My code is:
var array = 1...10
println(array)
The result is:
VSs5Range (has 2 children)
But when I try to print the following array, it works:
var array = [1,2,3,4,5,6,7,8,9,10]
println(array)
Result is:
[1, 2, 3, 4, 5, 6, 7, 8, 9, 10]
Why isn't the first one printing correctly?
The expression 1...10 returns a Range, not an Array. Internally, a Range stores two values (a start and an end); an Array, on he other hand, is a dynamic structure containing "n" values.
As explained,
var array = 1...10
array, in this case, is a Range object, not an array
If you want to print its content do this (changed the name to something more suitable)
var range = 1...10
for value in range
{
println(value)
}
Related
I'm learning swift, and I do the sololearn course to get some knowledge, but I bumped into something that I don't understand.
It is about modifying an array's values. The questionable part states the following:
In the following example, the elements with index 1, 2, 3 are replaced with two new values.
shoppingList[1...3] = [“Bananas”, “Oranges”]
How can an one dimensional array take more than one value per index? And how do I access them? Am I misunderstanding something?
What this code does is replacing the element of shoppingList in the 1...3 range using Array.subscript(_:)
That means considering this array:
var shoppingList = ["Apples", "Strawberries", "Pears", "Pineaples"]
that with:
shoppingList[1...3] = ["Bananas", "Oranges"]
Strawberries, Pears and Pineaples will be replaced by Bananas and Oranges.
so the resulting array will be: Apples, Bananas, Oranges
When you assign to a range of indices in an array (array[1...3]), those elements are removed from the array and the new elements are 'slotted in' in their place. This can result in the array growing or shrinking.
var array = Array(0...5)
// [0, 1, 2, 3, 4, 5]
array[1...3] = [-1, -2]
// [0, -1, -2, 3, 4]
Notice how our array's length is now one element shorter.
You could use a tuple (Value, Value), or create a struct to handle your values there, in fact if you plan to reuse this pair or value, a struct is the way to go.
By the way, there's no need to add [1..3], just put the values inside the brackets.
struct Value {
var name: String
var lastName: String
}
let values = [Value(name: "Mary", lastName: "Queen"), Value(name: "John", lastName: "Black")]
// Access to properties
let lastName = values[1].lastName
// OR
let tuples = [("Mary", "Queen"), ("John", "Black")]
let lastNameTuple = tuples[1].1
Hope you're enjoying Swift!
I am trying to create a function that takes an array of Int, and returns a new array of all of the even numbers in the original array.
I have been fumbling around with this code (I am a very new beginner)
let numberArray = [1, 2, 3, 4, 5, 6, 7, 8, 9, 10]
var newArray: [Int] = []
func newInt(newEven: Int, newArray: [Int]) -> Int {
for newEven in numberArray{
var index = 0
index += 1
if newEven % 2 == 0 {
newArray.insert(newEven, at:[index])
}
return newEven
}
}
print(newArray)
This is a good start! Here are some pointers:
1. Formatting
The formatting needs some work. Generally, every new scope ({ ... }) should introduce a new layer of indentation, like so:
let numberArray = [1, 2, 3, 4, 5, 6, 7, 8, 9, 10]
var newArray: [Int] = []
func newInt(newEven: Int, newArray: [Int]) -> Int {
for newEven in numberArray{
var index = 0
index += 1
if newEven % 2 == 0 {
newArray.insert(newEven, at:[index])
}
return newEven
}
}
print(newArray)
Now we can make some observations:
1. index is scoped to the for loop body, and will always have the same value of 0, and then 1 after the next line.
2. The return statement is within the for loop body, and unconditional. This function will always return the value of the first element of numberArray
3. The return type of this function is Int. But in your question, you state that you want this to return an array of all of the even numbers. So your return type will have to be Array<Int> (a.k.a. [Int]), not just Int.
2. Compilation issues
This function has several errors that will prevent compilation:
The return statement is within a loop body. If numberArray is empty, and the for loop body is never entered, then you don't hit the return statement. Once control reaches the end of the function, what value should be returned? It's not defined, so that's an error. In Swift, all code paths through a function must return a value. (with the exception of Void functions, which implicitly return nothing at the end)
You're trying to call Array.insert(_:at:) with a second argument of [index], which is an array literal of type Array<Int>. It should just be index.
3. Logical issues
Your function introduces a parameter called newArray, which shadows the global variable newArray on the line before it. The global variable isn't necessary, and you should delete it.
Your function operates over numberArray, but doesn't explicitly take it as input via a parameter. Rather than hardcoding a reference to a global variable like numberArray, you should use a parameter.
The parameter newEven is unused, and is shadowed by the local variable of the for loop
Your function name newInt(newEven:newArray:) doesn't describe what the function does. Consider a function signature like func allEvens(in input: [Int]) -> [Int]
You never actually call this function. You declare it, but never told the program to run it.
You don't need to use Array.insert(_:at:). You can simply use Array.append, which will automatically append elements to the end of the array.
4. Recommendations
Fix the method signature. You want the function to take some numbers, and output only the even numbers. Model that in code: func allEvens(in input: [Int]) -> [Int]
Create a new empty array locally (within the function), into which the even numbers will be stored. As you loop over the input array, check every number if it's even, and if so, append it to the evens array.
Return the evens array.
let numberArray = [1, 2, 3, 4, 5, 6, 7, 8, 9, 10]
var newArray = numberArray.filter({$0 % 2 == 0})
This should return a new array with even numbers.
As LeoDabus mentioned in his comment, the functionality you're seeking is already contained within Swift's Standard Library, so it's not really necessary to write a dedicated function to accomplish that task. Here's how you would do it:
let numberArray = [1, 2, 3, 4, 5, 6, 7, 8, 9, 10]
let newArray = numberArray.filter { $0.isMultiple(of: 2) }
print(newArray) // [2, 4, 6, 8, 10]
In this, you're using the filter whether $0 (where $0 is an element in your array) is a multiple of the number you specified in the parameter, in this case, 2.
As you see in the documentation, isMultiple(of:) returns a Bool (true or false). This is the signature:
func isMultiple(of other: Self) -> Bool
I would recommend having a peek at this post covering the topics of map, filter, and reduce. These are useful things to know when starting out in Swift.
Additionally, I've found Dash to be extremely helpful in navigating documetation for Swift.
Update
I should have read your question more thoroughly, as I missed the part where you've gotta do it with a loop. Swift has a cool method called forEach, which I'm a huge fan of. Using that methodology, it would look something like this:
func filter(array: [Int], forMultiplesOf multiple: Int) -> [Int] {
// Create a landing spot for whatever is a multiple...it starts as empty
var newArray: [Int] = []
// This is not the most compact way, but it satisfies the loop constraint
array.forEach { number in
if number % multiple == 0 {
newArray.append(number)
}
}
// Once you're done with the loop, then return the new array you declared at the beginning
return newArray
}
And you'd call it like so:
let newArrayUsingFunction = filter(array: numberArray, forMultiplesOf: 2)
What you're doing here is passing in 2 parameters to the function (array & multiple) to return an array of Ints. See comments in code for what's going on
I tried to remove an element in NSUserDefaults which is the same as stockSymbol's value when click a button. My idea is that cast the NSUserDefaults to an array and remove the element with removeAtIndex. Here is my code.
#IBAction func buttonFilledStarClicked(sender: AnyObject) {
NSLog("Filled star clicked")
self.buttonFilledStar.hidden = true
self.buttonEmptyStar.hidden = false
var Array = NSUserDefaults.standardUserDefaults().objectForKey("favorites")! as! [String]
var countArray = (NSUserDefaults.standardUserDefaults().objectForKey("favorites")! as! [String]).count - 1
for i in 0...countArray {
if stockSymbol! == Array[i] {
NSLog("i is : \(i)")
Array.removeAtIndex(i)
}
else {}
}
NSLog("Array is: \(Array), countArray is: \(countArray)")
}
However it has 'out of index' error.
It works when I just comment Array.removeAtIndex(i) out.
Array looks like this --
["aa", "bb", "Test!", "Test!"]
Any suggestions? Thank you in advance.
So, the change you can make to resolve the error with the least impact on your code overall would be to simply iterate through the indices backwards:
for i in (0...countArray).reverse() {
if stockSymbol! == Array[i] {
NSLog("i is : \(i)")
Array.removeAtIndex(i)
}
else {}
}
But the best option is to just use Swift's filter:
Array = Array.filter { $0 != stockSymbol }
An expanded note on why the crash is happening...
Let's take a simplified example. Say I have the following array:
var arr = [1, 2, 3, 4, 5, 6, 7, 8, 9, 10]
And I want to remove all of the odd numbers out of it. Using your first naïve approach, I might write my logic like this:
for i in 0..<arr.count {
if arr[i] % 2 != 0 {
arr.removeAtIndex(i)
}
}
Look at what happens on each iteration.
On the first iteration, we have arr[i] of 1. This is an odd number, so we'll removeAtIndex, and our array now actually looks like this:
[2, 3, 4, 5, 6, 7, 8, 9, 10]
The array's size is now smaller--it has just 9 elements. But the loop doesn't work like an old C-style for loop where i < arr.count is checked on each iteration (which is part of why this loop is faster).
But notice something else that happens when we iterate forward...
On the second iteration, i is equal to 1, and so what does arr[i] give us? It gives us 3. We never even check 2. On the first iteration, when i was 0, it was at index 1. On the second iteration, when i is 1, the 2 is at index 0.
So on the second iteration, we'll call removeAtIndex with i equal to 1 and remove the 3.
This pattern will continue for a few iterations until we end up with our array of just even numbers:
[2, 4, 6, 8, 10]
But this happens after the iteration where i was equal to 4, and the loop is going to try running until i is equal to 10.
On the sixth iteration of the loop, we try to access the element at index 5 of the array. But the array only has five elements, so the largest index is 4. When we try to access index 5, we crash.
You should not remove it from inside of the loop, when you call removeAtIndex(i) Array removes the item so you have 1 less item then countArray.. so you have to have another array to remember which item you want to remove and remove it outside of the loop.. or better option is to use filter
// Filter only strings that match stockSymbol
Array = Array.filter { $0 == stockSymbol! }
Try to find out which i that give you index out of range result. Is it the 0 or the last one. Maybe you will find some other useful clue.
First of all Array is a type, maybe you can call:
var favourites = NSUserDefaults.standardUserDefaults().objectForKey("favorites")! as! [String]
Then you don't need a array's count variable you can access using count arrays property.
Finally if you are iterating through an array and remove an element it always going to throw "index's error" because the index is not the same as the beginning..
For solving this you can take two pointers of the index variable, but what I would do is something like this:
var correctElements = favourites.filter({$0!=stockSymbol})
I have a array of dictionary.
I need to add a new key and a value to all the elements of array of dictionary.
Please guide.
You need to extract the dictionary from the array, modify it and put back to the array, since arrays and dictionaries in Swift are value types.
Something like this should work for you:
var arrayofDict = [["1": 1], ["2": 2], ["3": 3]]
for i in 0..<arrayofDict.count {
var dict = arrayofDict[i]
dict["random"] = Int(arc4random_uniform(8)) //random integer value
arrayofDict[i] = dict
}
print(arrayofDict) //prints "[["1": 1, "random": 2], ["2": 2, "random": 0], ["random": 2, "3": 3]]\n"
I read swift handbook and was trying to do some exercises. But I run into a problem and I do not know if I do something wrong or if xCode 6 beta is just buggy.
// Playground - noun: a place where people can play
import Cocoa
let interestingNumbers = [
"Prime": [2, 3, 5, 7, 11, 13],
"Fibonacci": [1, 1, 2, 3, 5, 8],
"Square": [1, 4, 9, 16, 25],
]
var largest = 0
var lastLargest = Integer[]()
var index = 0
for (kind, numbers) in interestingNumbers {
for number in numbers {
if number > largest {
//lastLargest[index] = number
index++
largest = number
}
}
}
index
lastLargest
largest
As soon as I uncomment lastLargest[index] = number I do not get any results on right side in playground. Nor I get any infos about index, lastLargest or largest.
Following example does not work either:
var index2 = 0
var lastLargest2 = Integer[]()
lastLargest2[index2] = 1
index2++
lastLargest2[index2] = 2
You are appending using an out of bound array-index. Don't do that. Instead, use append:
lastLargest.append(number)
From Apple's documentation:
You can’t use subscript syntax to append a new item to the end of an array. If you try to use subscript syntax to retrieve or set a value for an index that is outside of an array’s existing bounds, you will trigger a runtime error.
When you're using explicit indexes (subscript notation) to set values in a mutable array, some value must already exist in that array at that index. When you use subscript notation, you're essentially using a 'set', rather than a 'set and add if necessary'.
As a result, you should be using:
lastLargest.insert(number, atIndex: index)
If you want to insert a new item. This will let you insert an item at the specified index, assuming your collection's size is already greater than or equal to the index you're trying to replace.