Is there a nicer/shorter/better way of performing the following:
filename = "AA_BB_CC_DD_EE_FF.xyz"
parts = filename.split("_")
packageName = "${parts[0]}_${parts[1]}_${parts[2]}_${parts[3]}"
//packageName == "AA_BB_CC_DD"
The format remains constant (6 parts, _ separator) but some of the values and lengths of AA,BB are variable.
You can do the same thing by just programming the "joining" part differently:
The following result in the same thing as packageName:
filename.split('_')[0..3].join('_')
It just uses a range to slice the array, and .join to concatenate with a delimiter.
As the separator char between the "segments" in the source filename and in the
result is the same (_), you don't need to split the filename and join the parts again.
Your task can be done with a single regex:
def result = filename.find(/([A-Z0-9]+_){3}[A-Z0-9]+/)
Related
I have a text file. I would like to remove all decimal points and their trailing numbers, unless text is preceding.
e.g 12.29,14.6,8967.334 should be replaced with 12,14,8967
e.g happypants2.3#email.com should not be modified.
My code is:
import re
txt1 = "9.9,8.8,22.2,88.7,morris1.43#email.com,chat22.3#email.com,123.6,6.54"
txt1 = re.sub(r',\d+[.]\d+', r'\d+',txt1)
print(txt1)
unless there is an easier way of completing this, how do I modify r'\d+' so it just returns the number without a decimal place?
You need to make use of groups in your regex. You put the digits before the '.' into parentheses, and then you can use '\1' to refer to them later:
txt1 = re.sub(r',(\d+)[.]\d+', r',\1',txt1)
Note that in your attempted replacement code you forgot to replace the comma, so your numbers would have been glommed together. This still isn't perfect though; the first number, since it doesn't begin with a comma, isn't processed.
Instead of checking for a comma, the better way is to check word boundaries, which can be done using \b. So the solution is:
import re
txt1 = "9.9,8.8,22.2,88.7,morris1.43#email.com,chat22.3#email.com,123.6,6.54"
txt1 = re.sub(r'\b(\d+)[.]\d+\b', r'\1',txt1)
print(txt1)
Considering these are the only two types of string that is present in your file, you can explicitly check for these conditions.
This may not be an efficient way, but what I have done is split the str and check if the string contains #email.com. If thats true, I am just appending to a new list. For your 1st condition to satisfy, we can convert the str to int which will eliminate the decimal points.
If you want everything back to a str variable, you can use .join().
Code:
txt1 = "9.9,8.8,22.2,88.7,morris1.43#email.com,chat22.3#email.com,123.6,6.54"
txt_list = []
for i in (txt1.split(',')):
if '#email.com' in i:
txt_list.append(i)
else:
txt_list.append(str(int(float(i))))
txt_new = ",".join(txt_list)
txt_new
Output:
'9,8,22,88,morris1.43#email.com,chat22.3#email.com,123,6'
I have a problem with splitting string into two parts on special character.
For example:
12345#data
or
1234567#data
I have 5-7 characters in first part separated with "#" from second part, where are another data (characters,numbers, doesn't matter what)
I need to store two parts on each side of # in two variables:
x = 12345
y = data
without "#" character.
I was looking for some Lua string function like splitOn("#") or substring until character, but I haven't found that.
Use string.match and captures.
Try this:
s = "12345#data"
a,b = s:match("(.+)#(.+)")
print(a,b)
See this documentation:
First of all, although Lua does not have a split function is its standard library, it does have string.gmatch, which can be used instead of a split function in many cases. Unlike a split function, string.gmatch takes a pattern to match the non-delimiter text, instead of the delimiters themselves
It is easily achievable with the help of a negated character class with string.gmatch:
local example = "12345#data"
for i in string.gmatch(example, "[^#]+") do
print(i)
end
See IDEONE demo
The [^#]+ pattern matches one or more characters other than # (so, it "splits" a string with 1 character).
scala has a standard way of splitting a string in StringOps.split
it's behaviour somewhat surprised me though.
To demonstrate, using the quick convenience function
def sp(str: String) = str.split('.').toList
the following expressions all evaluate to true
(sp("") == List("")) //expected
(sp(".") == List()) //I would have expected List("", "")
(sp("a.b") == List("a", "b")) //expected
(sp(".b") == List("", "b")) //expected
(sp("a.") == List("a")) //I would have expected List("a", "")
(sp("..") == List()) // I would have expected List("", "", "")
(sp(".a.") == List("", "a")) // I would have expected List("", "a", "")
so I expected that split would return an array with (the number a separator occurrences) + 1 elements, but that's clearly not the case.
It is almost the above, but remove all trailing empty strings, but that's not true for splitting the empty string.
I'm failing to identify the pattern here. What rules does StringOps.split follow?
For bonus points, is there a good way (without too much copying/string appending) to get the split I'm expecting?
For curious you can find the code here.https://github.com/scala/scala/blob/v2.12.0-M1/src/library/scala/collection/immutable/StringLike.scala
See the split function with the character as an argument(line 206).
I think, the general pattern going on over here is, all the trailing empty splits results are getting ignored.
Except for the first one, for which "if no separator char is found then just send the whole string" logic is getting applied.
I am trying to find if there is any design documentation around these.
Also, if you use string instead of char for separator it will fall back to java regex split. As mentioned by #LRLucena, if you provide the limit parameter with a value more than size, you will get your trailing empty results. see http://docs.oracle.com/javase/7/docs/api/java/lang/String.html#split(java.lang.String,%20int)
You can use split with a regular expression. I´m not sure, but I guess that the second parameter is the largest size of the resulting array.
def sp(str: String) = str.split("\\.", str.length+1).toList
Seems to be consistent with these three rules:
1) Trailing empty substrings are dropped.
2) An empty substring is considered trailing before it is considered leading, if applicable.
3) First case, with no separators is an exception.
split follows the behaviour of http://docs.oracle.com/javase/7/docs/api/java/lang/String.html#split(java.lang.String)
That is split "around" the separator character, with the following exceptions:
Regardless of anything else, splitting the empty string will always give Array("")
Any trailing empty substrings are removed
Surrogate characters only match if the matched character is not part of a surrogate pair.
I wanted to know how to remove first character of a string in octave. I am manipulating the string in a loop and after every loop, I want to remove the first character of the remaining string.
Thanks in advance.
If it's just a one-line string then:
short_string = long_string(2:end)
But if you have a cell array of strings then either do it as above if you have a loop already, otherwise you can use this shorthand to do it in one line:
short_strings = cellfun(#(x)(x(2:end)), long_strings, 'uni', false)
Or else if you have a matrix of strings (i.e. all the same length), then you can vectorize it as:
short_strings = long_strings(:, 2:end)
So say I have a string with some underscores like hi_there.
Is there a way to auto-convert that string into "hi there"?
(the original string, by the way, is a variable name that I'm converting into a plot title).
Surprising that no-one has yet mentioned strrep:
>> strrep('string_with_underscores', '_', ' ')
ans =
string with underscores
which should be the official way to do a simple string replacements. For such a simple case, regexprep is overkill: yes, they are Swiss-knifes that can do everything possible, but they come with a long manual. String indexing shown by AndreasH only works for replacing single characters, it cannot do this:
>> s = 'string*-*with*-*funny*-*separators';
>> strrep(s, '*-*', ' ')
ans =
string with funny separators
>> s(s=='*-*') = ' '
Error using ==
Matrix dimensions must agree.
As a bonus, it also works for cell-arrays with strings:
>> strrep({'This_is_a','cell_array_with','strings_with','underscores'},'_',' ')
ans =
'This is a' 'cell array with' 'strings with' 'underscores'
Try this Matlab code for a string variable 's'
s(s=='_') = ' ';
If you ever have to do anything more complicated, say doing a replacement of multiple variable length strings,
s(s == '_') = ' ' will be a huge pain. If your replacement needs ever get more complicated consider using regexprep:
>> regexprep({'hi_there', 'hey_there'}, '_', ' ')
ans =
'hi there' 'hey there'
That being said, in your case #AndreasH.'s solution is the most appropriate and regexprep is overkill.
A more interesting question is why you are passing variables around as strings?
regexprep() may be what you're looking for and is a handy function in general.
regexprep('hi_there','_',' ')
Will take the first argument string, and replace instances of the second argument with the third. In this case it replaces all underscores with a space.
In Matlab strings are vectors, so performing simple string manipulations can be achieved using standard operators e.g. replacing _ with whitespace.
text = 'variable_name';
text(text=='_') = ' '; //replace all occurrences of underscore with whitespace
=> text = variable name
I know this was already answered, however, in my case I was looking for a way to correct plot titles so that I could include a filename (which could have underscores). So, I wanted to print them with the underscores NOT displaying with as subscripts. So, using this great info above, and rather than a space, I escaped the subscript in the substitution.
For example:
% Have the user select a file:
[infile inpath]=uigetfile('*.txt','Get some text file');
figure
% this is a problem for filenames with underscores
title(infile)
% this correctly displays filenames with underscores
title(strrep(infile,'_','\_'))