I have the need to remove leading and trailing spaces around a punctuation character.
For example: Hello , World ... I 'm a newbie iOS Developer.
And I'd like to have: > Hello, World... I'm a newbie iOS Developer.
How can I do this? I tried to get components of the string and enumerate it by sentences. But that is not what I need
Rob's answer is great, but you can trim it down quite a lot by taking advantage of the \p{Po} regular expression class. Getting rid of the spaces around punctuation then becomes a single regular expression replace:
import Foundation
let input = "Hello , World ... I 'm a newbie iOS Developer."
let result = input.replacingOccurrences(of: "\\s*(\\p{Po}\\s?)\\s*",
with: "$1",
options: [.regularExpression])
print(result) // "Hello, World... I'm a newbie iOS Developer."
Rob's answer also tries to trim leading/trailing spaces, but your input doesn't have any of those. If you do care about that you can just call result.trimmingCharacters(in: .whitespacesAndNewlines) on the result.
Here's an explanation for the regular expression. Removing the double-escapes it looks like
\s*(\p{Po}\s?)\s*
This is comprised of the following components:
\s* - Match zero or more whitespace characters (and throw them away)
(…) - Capturing group. Anything inside this group is preserved by the replacement (the $1 in the replacement refers to this group).
\p{Po} - Match a single character in the "Other_Punctuation" unicode category. This includes things like ., ', and …, but excludes things like ( or -.
\s? - Match a single optional whitespace character. This preserves the space after periods (or ellipses).
\s* - Once again, match zero or more whitespace characters (and throw them away). This is what turns your , World into , World.
For Swift 3 or 4 you can use :
let trimmedString = string.trimmingCharacters(in: .whitespaces)
This is a really wonderful problem and a shame that it isn't easier to do in Swift today (someday it will be, but not today).
I kind of hate this code, but I'm getting on a plane for 20 hours, and don't have time to make it nicer. This may at least get you started using NSMutableString. It'd be nice to work in String, and Swift hates regular expressions, so this is kind of hideous, but at least it's a start.
import Foundation
let input = "Hello, World ... I 'm a newbie iOS Developer."
let adjustments = [
(pattern: "\\s*(\\.\\.\\.|\\.|,)\\s*", replacement: "$1 "), // elipsis or period or comma has trailing space
(pattern: "\\s*'\\s*", replacement: "'"), // apostrophe has no extra space
(pattern: "^\\s+|\\s+$", replacement: ""), // remove leading or trailing space
]
let mutableString = NSMutableString(string: input)
for (pattern, replacement) in adjustments {
let re = try! NSRegularExpression(pattern: pattern)
re.replaceMatches(in: mutableString,
options: [],
range: NSRange(location: 0, length: mutableString.length),
withTemplate: replacement)
}
mutableString // "Hello, World... I'm a newbie iOS Developer."
Regular expressions can be very confusing when you first encounter them. A few hints at reading these:
The specific language Foundation uses is described by ICU.
Backslash (\) means "the next character is special" for a regex. But inside a Swift string, backslash means "the next character is special" of the string. So you have to double them all.
\s means "a whitespace character"
\s* means "zero or more whitespace characters"
\s+ means "one or more whitespace characters"
$1 means "the thing we matched in parentheses"
| means "or"
^ means "start of string"
$ means "end of string"
. means "any character" so to mean "an actual dot" you have to type "\\." in a Swift string.
Notice that I check for both "..." and "." in the same regular expression. You kind of have to do something like that, or else the "." will match three times inside the "...". Another approach would be to first replace "..." with "…" (the single ellipsis character, typed on a Mac by pressing Opt-;). Then "…" is a one-character punctuation. (You could also decide to re-expand all ellipsis back to dot-dot-dot at the end of the process.)
Something like this is probably how I'd do it in real life, get it done and shipped, but it may be worth the pain/practice to try to build this as a character-by-character state machine, walking one character at a time, and keeping track of your current state.
You can try something like
string.replacingOccurrences(of: " ,", with: ",") for every punctuation...
Interesting problem; here's my stab at a non-Regex approach:
func correct(input: String) -> String {
typealias Correction = (punctuation: String, replacement: String)
let corrections: [Correction] = [
(punctuation: "...", replacement: "... "),
(punctuation: "'", replacement: "'"),
(punctuation: ",", replacement: ", "),
]
var transformed = input
for correction in corrections {
transformed = transformed
.components(separatedBy: correction.punctuation)
.map({ $0.trimmingCharacters(in: .whitespaces) })
.joined(separator: correction.replacement)
}
return transformed
}
let testInput = "Hello , World ... I 'm a newbie iOS Developer."
let testOutput = correct(input: testInput)
// Hello, World... I'm a newbie iOS Developer.
If you were doing this manually by processing characters arrays, you would merely need to check the previous and next characters around spaces. You can achieve the same result using functional style programming with zip, filter and map:
let testInput = "Hello , World ... I 'm a newbie iOS Developer."
let punctuation = Set(".\',")
let previousNext = zip( [" "] + testInput, String(testInput.dropFirst()) + [" "] )
let filteredChars = zip(Array(previousNext),testInput)
.filter{ $1 != " "
|| !($0.0 != " " && punctuation.contains($0.1))
}
let filteredInput = String(filteredChars.map{$1})
print(testInput) // Hello , World ... I 'm a newbie iOS Developer.
print(filteredInput) // Hello, World... I'm a newbie iOS Developer.
Swift 4, 4.2 and 5
let str = " Akbar Code "
let trimmedString = str.trimmingCharacters(in: .whitespaces)
Related
Let's say I have the following strings:
"Chest Stretch (left)"
"Chest Stretch (right)"
How can I use SwiftUI to output only:
"Chest Stretch"
I thought this may be a possible duplicate of swift - substring from string.
However, I am seeking a way to do this inside var body: some View within an if conditional expression.
A possible way is Regular Expression
let string = "Chest Stretch (left)"
let trimmedString = string.replacingOccurrences(of: "\\s\\([^)]+\\)", with: "", options: .regularExpression)
The found pattern will be replaced with an empty string.
The pattern is:
One whitespace character \\s
An opening parenthesis \\(
One or more characters which are not a closing parentheses [^)]+
and a closing parenthesis \\)
Or simpler if the delimiter character is always the opening parenthesis
let trimmedString = String(string.prefix(while: {$0 != "("}).dropLast())
Or
let trimmedString = string.components(separatedBy: " (").first!
I have a string like this in below and I want replace space with backslash and space.
let test: String = "Hello world".replacingOccurrences(of: " ", with: "\ ")
print(test)
But Xcode make error of :
Invalid escape sequence in literal
The code in up is working for any other character or words, but does not for backslash. Why?
Backslash is used to escape characters. So to print a backslash itself, you need to escape it. Use \\.
For Swift 5 or later you can avoid needing to escape backslashes using the enhanced string delimiters:
let backSlashSpace = #"\ "#
If you need String interpolation as well:
let value = 5
let backSlashSpaceWithValue = #"\\#(value) "#
print(backSlashSpaceWithValue) // \5
You can use as many pound signs as you wish. Just make sure to mach the same amount in you string interpolation:
let value = 5
let backSlashSpaceWithValue = ###"\\###(value) "###
print(backSlashSpaceWithValue) // \5
Note: If you would like more info about this already implemented Swift evolution proposal SE-0200 Enhancing String Literals Delimiters to Support Raw Text
i am having problems using replacingOccurrences to replace a word after some specific keywords inside a textview in swift 5 and Xcode 12.
For example:
My textview will have the following string "NAME\JOHN PHONE\555444333"
"NAME" and "PHONE" will be unique so anytime i change the proper field i want to change the name or phone inside this textview.
let's for example change JOHN for CLOE with the code
txtOther.text = txtOther.text.replacingOccurrences(of: "NAME(.*?)\\s", with: "NAME\\\(new_value) ", options: .regularExpression)
print (string)
output: "NAMECLOE " instead of "NAME\CLOE "
I can't get the backslash to get print according to the regular expression.
Or maybe change the regex expression just to change JOHN for CLOE after "NAME"
Thanks!!!
Ariel
You can solve this by using a raw string for your regular expresion, that is a string surrounded with #
let pattern = #"(NAME\\)(.*)\s"#
Note that name and the \ is in a separate group that can be referenced when replacing
let output = string.replacingOccurrences(of: pattern, with: "$1\(new_value) ", options: .regularExpression)
Use
"NAME\\JOHN PHONE\\555444333".replacingOccurrences(
of: #"NAME\\(\S+)"#,
with: "NAME\\\\\(new_value)",
options: .regularExpression
)
Double backslashes in the replacement, backslash is a special metacharacter inside a replacement.
\S+ matches one or more characters different from whitespace, this is shorter and more efficient than .*?\s, and you do not have to worry about how to put back the whitespace.
I have to split a long string with lyrics to a song into lines and then, for each line, split them into words. I'm going to hold this information in a 2 dimensional array.
I've seen some similar questions and they have been solved using [NSRegularExpression] (https://developer.apple.com/documentation/foundation/nsregularexpression)
but I can't seem to find any regular expression that equals "everything except something" which is what I want to split on when splitting a string into words.
More specifically I want to split on Everything except alphanumerics or ' or -. In Java this regular expression is [^\\w'-]+
Below is the string, followed by my Swift code to attempt to achieve this task (I just split on whitespace instead of actually splitting on words with "[^\w'-]+" as I can't figure out how to do it.
1 Is this the real life?
2 Is this just fantasy?
3 Caught in a landslide,
4 No escape from reality.
5
6 Open your eyes,
7 Look up to the skies and see,
8 I'm just a poor boy, I need no sympathy,
9 Because I'm easy come, easy go,
10 Little high, little low,
11 Any way the wind blows doesn't really matter to me, to me.
12
13 Mama, just killed a man,
(etc.)
let lines = s?.components(separatedBy: "\n")
var all_words = [[String]]()
for i in 0..<lines!.count {
let words = lines![i].components(separatedBy: " ")
let new_words = words.filter {$0 != ""}
all_words.append(new_words)
}
I suggest to use a reverse pattern, [\w'-]+, to match the strings you need and use the matches matching function.
Your code will look like:
for i in 0..<lines!.count {
let new_words = matches(for: "[\\w'-]+", in: lines![i])
all_words.append(new_words)
}
The following line of code:
print(matches(for: "[\\w'-]+", in: "11 Any way the wind blows doesn't really matter to me, to me."))
yields ["11", "Any", "way", "the", "wind", "blows", "doesn\'t", "really", "matter", "to", "me", "to", "me"].
One simple solution is to replace the sequences with a special character first and then split on that character:
let words = string
.replacingOccurrences(of: "[^\\w'-]+", with: "|", options: .regularExpression)
.split(separator: "|")
print(words)
However, if you can, use the system function to enumerate words.
Having a string like this:
let str = "In 1273, however, they lost their son in an accident;[2] the young Theobald was dropped by his nurse over the castle battlements.[3]"
I'm looking for a solution of removing all appearances of square brackets and anything that between it.
I was trying using a String's method: replacingOccurrences(of:with:), but it requires the exact substring it needs to be removed, so it doesn't work for me.
You can use:
let updated = str.replacingOccurrences(of: "\\[[^\\]]+\\]", with: "", options: .regularExpression)
The regular expression (without the required escapes needed in a Swift string is:
\[[^\]+]\]
The \[ and \] look for the characters [ and ]. They have a backslash to remove the normal special meaning of those characters in a regular expression.
The [^]] means to match any character except the ] character. The + means match 1 or more.
You can create a while loop to get the lowerBound of the range of the first string and the upperBound of the range of the second string and create a range from that. Next just remove the subrange of your string and set the new startIndex for the search.
var str = "In 1273, however, they lost their son in an accident;[2] the young Theobald was dropped by his nurse over the castle battlements.[3]"
var start = str.startIndex
while let from = str.range(of: "[", range: start..<str.endIndex)?.lowerBound,
let to = str.range(of: "]", range: from..<str.endIndex)?.upperBound,
from != to {
str.removeSubrange(from..<to)
start = from
}
print(str) // "In 1273, however, they lost their son in an accident; the young Theobald was dropped by his nurse over the castle battlements."