215

Is it possible to use the range operator ... and ..< with if statement. Maye something like this:

let statusCode = 204
if statusCode in 200 ..< 299 {
  NSLog("Success")
}

6 Answers 6

471

You can use the "pattern-match" operator ~=:

if 200 ... 299 ~= statusCode {
    print("success")
}

Or a switch-statement with an expression pattern (which uses the pattern-match operator internally):

switch statusCode {
case 200 ... 299:
    print("success")
default:
    print("failure")
}

Note that ..< denotes a range that omits the upper value, so you probably want 200 ... 299 or 200 ..< 300.

Additional information: When the above code is compiled in Xcode 6.3 with optimizations switch on, then for the test

if 200 ... 299 ~= statusCode

actually no function call is generated at all, only three assembly instruction:

addq    $-200, %rdi
cmpq    $99, %rdi
ja  LBB0_1

this is exactly the same assembly code that is generated for

if statusCode >= 200 && statusCode <= 299

You can verify that with

xcrun -sdk macosx swiftc -O -emit-assembly main.swift

As of Swift 2, this can be written as

if case 200 ... 299 = statusCode {
    print("success")
}

using the newly introduced pattern-matching for if-statements. See also Swift 2 - Pattern matching in "if".

15
  • 1
    Cool, is this O(1)? Also, it'd be nice if Swift had a short hand for switch statements, like Scala for example. But given that you're always forced to handle all possibilities at compile time in Swift, it may not really be feasible.
    – Sky
    Jul 22, 2014 at 17:07
  • 2
    @Sky: From the generated assembly code one can see that a library function func ~= (Range<A>, A) -> Bool is called. I would assume that this function works with O(1).
    – Martin R
    Jul 22, 2014 at 17:43
  • 4
    @Downvoter: Some explaining comment would be nice, so that I can improve or fix the answer ...
    – Martin R
    Jul 22, 2014 at 17:50
  • 1
    @MartinR how you get to know which function called by assembly language.Hopper? +1 for cool answer
    – codester
    Jul 22, 2014 at 17:55
  • 3
    @codester: I compiled the code on the command line with xcrun -sdk macosx swift -emit-assembly main.swift and inspected the assembly code. Then I used xcrun swift-demangle ... to de-mangle the name of the called function. - Unfortunately, Xcode cannot yet create assembly code for Swift files, perhaps it will work in a later version.
    – Martin R
    Jul 22, 2014 at 17:58
109

This version seems to be more readable than pattern matching:

if (200 ... 299).contains(statusCode) {
    print("Success")
}
2
  • 2
    Exactly what I was searching for Feb 22, 2018 at 22:24
  • I get this error => Can't form Range with upperBound < lowerBound
    – Ahmadreza
    Sep 7, 2019 at 5:22
16

This is an old thread, but it seems to me we're over-thinking this. It seems to me the best answer is just

if statusCode >= 200 && statusCode <= 299

There's no

if 200 > statusCode > 299

form that I'm aware of, and the other suggested solutions are doing function calls, which are harder to read, and might be slower to execute. The pattern match method is a useful trick to know, but seems like a poor fit for this problem.

Edit:

Personally, I find the pattern match operator to be hideous, and wish the compiler would support if x in 1...100 syntax. That is sooooo much more intuitive and easy to read than if 1...100 ~= x

7
  • 1
    You are right that this version is better to read, I just tried to answer the explicit question "Is it possible to use the range operator ... ?"But Xcode 6.3 beta (in optimized mode) generates exactly three assembly instructions for if 200 ... 299 ~= statusCode, no function call :)
    – Martin R
    Apr 4, 2015 at 14:58
  • 14
    Actually if 200 ... 299 ~= statusCode gives the same assembly code as if statusCode >= 200 && statusCode <= 299
    – Martin R
    Apr 4, 2015 at 15:06
  • 7
    Unless this conditional is in a critical section that gets visited thousands of times per second, worrying about function call overhead is premature optimization. Even then, I'd worry more about what a function call is doing rather than the cost of calling it. Nice job @MartinR for proving there's no cost regardless, though.
    – rickster
    Apr 4, 2015 at 16:04
  • 1
    @rickster, true enough. I still tend to prefer efficient constructs over inefficient ones as a matter of habit (assuming readability is similar). Not to the extent that I waste too much of MY time on it, but it still pays to know what the costs of different approaches are.
    – Duncan C
    Apr 4, 2015 at 16:52
  • 1
    This is nitpicking, but I disagree with your suggestion that your if statement is more readable or understandable than the answer posted by @SerhiiYakovenko. Simply on the basis of DRY - you name "statusCode" twice. In a late-night bleary-eyed debugging session after I'd decided that a different variable named "statusValue" should be used here instead of "statusCode", I just might make the mistake of changing one of the variable names and not the other.
    – RenniePet
    Dec 28, 2016 at 6:27
4

I wanted to check 4xx errors except 401. Here is the code:

let i = 401

if 400..<500 ~= i, i != 401 {
    print("yes")
} else {
    print("NO")
}
1

I preferred Range .contains() operator too, until found that its implementation is inefficient - https://oleb.net/blog/2015/09/swift-ranges-and-intervals/

We can represent the condition x < 0 using a range: (Int.min..<0).contains(x) is exactly equivalent. It is vastly slower, though. The default implementation of contains(_:) traverses the entire collection, and executing a loop nine quintillion times in the worst case is not cheap.

1
  • 1
    This information is obsolete, and wrong. It already was wrong at the time you wrote your answer.
    – KPM
    Jul 27, 2020 at 21:21
1

if you want to know if the response status code is a success, simply make it this way

  if response.statuscode < 300 {
      print("response is a success")
  }

if you iterate from 200,201,203,204 ... 300. There were just too much unnecessary iterations. Hope this helps! :D

0

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.