I need to check, if the string is valid hexadecimal number in 0x3f (for example) format.
var strRegex="0[xX][0-9a-fA-F]+";
var re = new RegExp(strRegex);
if (!re.test(theAddress) {.... error alert stuff... }
As I have it now, it accept stuff like 0x3q and so on.
What regex expression should I use instead?
Put anchors arround the regex:
var strRegex = "^0[xX][0-9a-fA-F]+$";
I would put word boundaries \b around the pattern:
var re = new RegExp("\b0[xX][0-9a-fA-F]+\b");
If you miss them the string 0x3q would match too since it contains 0x3 which would match the pattern. Using \b it would only match 0x3 if it is surrounded either by a space, tab the begin or the end of the string ,, ; etc.
Others suggested to use the ^ and $ anchors but this will only work if the string contains exactly one hexadecimal value. The solution with word boundaries matches also strings which contain one (or more) hex values.
Related
I have the regular expression:
const regex = /^\d*\.?\d{0,2}$/
and its inverse (I believe) of
const inverse = /^(?!\d*\.?\d{0,2}$)/
The first regex is validating the string fits any positive number, allowing a decimal and two decimal digits (e.g. 150, 14., 7.4, 12.68). The second regex is the inverse of the first, and doing some testing I'm fairly confident it's giving the expected result, as it only validates when the string is anything but a number that may have a decimal and two digits after (e.g. 12..05, a5, 54.357).
My goal is to remove any characters from the string that do not fit the first regex. I thought I could do that this way:
let myString = '123M.45';
let fixed = myString.replace(inverse, '');
But this does not work as intended. To debug, I tried having the replace character changed to something I would be able to see:
let fixed = myString.replace(inverse, 'ZZZ');
When I do this, fixed becomes: ZZZ123M.45
Any help would be greatly appreciated.
I think I understand your logic here trying to find a regex that is the inverse of the regex that matches your valid string, in the hopes that it will allow you to remove any characters that make your string invalid and leave only the valid string. However, I don't think replace() will allow you to solve your problem in this way. From the MDN docs:
The replace() method returns a new string with some or all matches of a pattern replaced by a replacement.
In your inverse pattern you are using a negative lookahead. If we take a simple example of X(?!Y) we can think of this as "match X if not followed by Y". In your pattern your "X" is ^ and your "Y" is \d*\.?\d{0,2}$. From my understanding, the reason you are getting ZZZ123M.45 is that it is finding the first ^ (i.e, the start of the string) that is not followed by your pattern \d*\.?\d{0,2}$, and since 123M.45 doesn't match your "Y" pattern, your negative lookahead is satisfied and the beginning of your string is matched and "replaced" with ZZZ.
That (I think) is an explanation of what you are seeing.
I would propose an alternative solution to your problem that better fits with how I understand the .replace() method. Instead of your inverse pattern, try this one:
const invalidChars = /[^\d\.]|\.(?=\.)|(?<=\.\d\d)\d*/g
const myString = '123M..456444';
const fixed = myString.replace(invalidChars, '');
Here I am using a pattern that I think will match the individual characters that you want to remove. Let's break down what this one is doing:
[^\d\.]: match characters that are not digits
\.(?=\.): match . character if it is followed by another . character.
(?<=\.\d\d)\d*: match digits that are preceded by a decimal and 2 digits
Then I join all these with ORs (|) so it will match any one of the above patterns, and I use the g flag so that it will replace all the matches, not just the first one.
I am not sure if this will cover all your use cases, but I thought I would give it a shot. Here's a link to a breakdown that might be more helpful than mine, and you can use this tool to tweak the pattern if necessary.
I don't think you can do this
remove any characters from the string that do not fit the first regex
Because regex matching is meant for the entire string, and replace is used to replace just a PART inside that string. So the Regex inside replace must be a Regex to match unwanted characters only, not inverted Regex.
What you could do is to validate the string with your original regex, then if it's not valid, replace and validate again.
//if (notValid), replace unwanted character
// replace everything that's not a dot or digit
const replaceRegex = /[^\d.]/g; // notice g flag here to match every occurrence
const myString = '123M.45';
const fixed = myString.replace(replaceRegex, '');
console.log(fixed)
// validate again
I am trying to find a way to extract the numbers that occur after abc/ immediately succeeding the / and before any further letters, numbers or punctuation.
E.g:
abc/134567/something should return 1234567
abc/1234567?foo=bar should still only return 1234567
blah/1234/abc/678 should only return 678 as I'm looking only for the number that succeeds abc/
I'm aware there are two options: regex or substring match.
In order to perform the substring match I need the index point but I'm dubious about merely doing an indexOf("abc/") as it only returns the index of the first letter - a - which could be present elsewhere in the string.
With regex I have struggled as I find that searching for a mixture of the letters and the slashes seems to cause it to return null.
So what's the best way?
You can use this regexpression :
var rgx = new RegExp("abc\/([0-9]+)","gi");
Then :
var m = rgx.exec("abc/1234567?foo=bar");
console.log(m[0]);
edited after comments
You could use a regular expression and seach for abc/ and following digits.
var array = ['abc/134567/something', 'abc/1234567?foo=bar', 'blah/1234/abc/678'];
console.log(array.map(s => s.match(/abc\/(\d+)/)[1]));
We accept string that has abc/, after it an integer number, that is taken as a matched group and either the end of string or some non-digit symbol after it.
abc\/(\d+)(?:$|\D)
test
You'll use in Javascript for matched group extraction:
var myRegexp = /abc\/(\d+)(?:$|\D)/g;
var match = myRegexp.exec(inputString);
var result=match[1]; // the number after abc/
In another regex engine than that of JavaScript, lookahead and lookbehind could be used. But in JS lookbehinds are forbidden. :-(. So we have to use this, a bit more complicated, way.
Are you after something like this:
^(.*\/)(\d+)(.*)
Where the second group will give you the digits after the slash.
Look at the regex here
I want to parse a pattern similar to this using javascript:
#[10] or #[15]
With all my efforts, I came up with this:
#\\[(.*?)\\]
This pattern works fine but the problem is it matches anything b/w those square brackets. I want it to match only numbers. I tried these too:
#\\[(0-9)+\\]
and
#\\[([(0-9)+])\\]
But these match nothing.
Also, I want to match only pattern which are complete words and not part of a word in the string. i.e. should contain spaces both side if its not starting or ending the script. That means it should not match phrase like this:
abxdcs#[13]fsfs
Thanks in advance.
Use the regex:
/(?:^|\s)#\[([0-9]+)\](?=$|\s)/g
It will match if the pattern (#[number]) is not a part of a word. Should contain spaces both sides if its not starting or ending the string.
It uses groups, so if need the digits, use the group 1.
Testing code (click here for demo):
console.log(/(?:^|\s)#\[([0-9]+)\](?=$|\s)/g.test("#[10]")); // true
console.log(/(?:^|\s)#\[([0-9]+)\](?=$|\s)/g.test("#[15]")); // true
console.log(/(?:^|\s)#\[([0-9]+)\](?=$|\s)/g.test("abxdcs#[13]fsfs")); // false
console.log(/(?:^|\s)#\[([0-9]+)\](?=$|\s)/g.test("abxdcs #[13] fsfs")); // true
var r1 = /(?:^|\s)#\[([0-9]+)\](?=$|\s)/g
var match = r1.exec("#[10]");
console.log(match[1]); // 10
var r2 = /(?:^|\s)#\[([0-9]+)\](?=$|\s)/g
var match2 = r2.exec("abxdcs #[13] fsfs");
console.log(match2[1]); // 13
var r3 = /(?:^|\s)#\[([0-9]+)\](?=$|\s)/g
var match3;
while (match3 = r3.exec("#[111] #[222]")) {
console.log(match3[1]);
}
// while's output:
// 111
// 222
You were close, but you need to use square brackets:
#\[[0-9]+\]
Or, a shorter version:
#\[\d+\]
The reason you need those slashes is to "escape" the square bracket. Usually they are used for denoting a "character class".
[0-9] creates a character class which matches exactly one digit in the range of 0 to 9. Adding the + changes the meaning to "one or more". \d is just shorthand for [0-9].
Of course, the backslash character is also used to escape characters inside of a javascript string, which is why you must escape them. So:
javascript
"#\\[\\d+\\]"
turns into:
regex
#\[\d+\]
which is used to match:
# a literal "#" symbol
\[ a literal "[" symbol
\d+ one or more digits (nearly identical to [0-9]+)
\] a literal "]" symbol
I say that \d is nearly identical to [0-9] because, in some regex flavors (including .NET), \d will actually match numeric digits from other cultures in addition to 0-9.
You don't need so many characters inside the character class. More importantly, you put the + in the wrong place. Try this: #\\[([0-9]+)\\].
I have a username field in my form. I want to not allow spaces anywhere in the string. I have used this regex:
var regexp = /^\S/;
This works for me if there are spaces between the characters. That is if username is ABC DEF. It doesn't work if a space is in the beginning, e.g. <space><space>ABC. What should the regex be?
While you have specified the start anchor and the first letter, you have not done anything for the rest of the string. You seem to want repetition of that character class until the end of the string:
var regexp = /^\S*$/; // a string consisting only of non-whitespaces
Use + plus sign (Match one or more of the previous items),
var regexp = /^\S+$/
If you're using some plugin which takes string and use construct Regex to create Regex Object i:e new RegExp()
Than Below string will work
'^\\S*$'
It's same regex #Bergi mentioned just the string version for new RegExp constructor
This will help to find the spaces in the beginning, middle and ending:
var regexp = /\s/g
This one will only match the input field or string if there are no spaces. If there are any spaces, it will not match at all.
/^([A-z0-9!##$%^&*().,<>{}[\]<>?_=+\-|;:\'\"\/])*[^\s]\1*$/
Matches from the beginning of the line to the end. Accepts alphanumeric characters, numbers, and most special characters.
If you want just alphanumeric characters then change what is in the [] like so:
/^([A-z])*[^\s]\1*$/
I've got a string which contains q="AWORD" and I want to replace q="AWORD" with q="THEWORD". However, I don't know what AWORD is.. is it possible to combine a string and a regex to allow me to replace the parameter without knowing it's value? This is what I've got thus far...
globalparam.replace('q="/+./"', 'q="AWORD"');
What you have is just a string, not a regular expression. I think this is what you want:
globalparam.replace(/q=".+?"/, 'q="THEWORD"');
I don't know how you got the idea why you have to "combine" a string and a regular expression, but a regex does not need to exist of wildcards only. A regex is like a pattern that can contain wildcards but otherwise will try to match the exact characters given.
The expression shown above works as follows:
q=": Match the characters q, = and ".
.+?": Match any character (.) up to (and including) the next ". There must be at least one character (+) and the match is non-greedy (?), meaning it tries to match as few characters as possible. Otherwise, if you used .+", it would match all characters up to the last quotation mark in the string.
Learn more about regular expressions.
Felix's answer will give you the solution, but if you actually want to construct a regular expression using a string you can do it this way:
var fullstring = 'q="AWORD"';
var sampleStrToFind = 'AWORD';
var mat = 'q="'+sampleStrToFind+'"';
var re = new RegExp(mat);
var newstr = fullstring.replace(re,'q="THEWORD"');
alert(newstr);
mat = the regex you are building, combining strings or whatever is needed.
re = RegExp constructor, if you wanted to do global, case sensitivity, etc do it here.
The last line is string.replace(RegExp,replacement);