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The string.replace() is deprecated on python 3.x. What is the new way of doing this?

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  • 13
    FWIW, I had the same confusion. Google "python string replace" took me to old deprecated string functions in python 2.7. IMHO, that section could use a big bold box explaining "string.xxx()" vs "xxx(string)", and directing people to the non-deprecated string methods, e.g. to docs.python.org/library/stdtypes.html#string-methods Dec 13 '13 at 22:43
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    Python documentation is an absolute shambles considering it is touted as an ideal first language. Quite often the stuff is there, but because of the poor way its organized, its often not indexed well by search engines or even their own site. Look at ToolMakerSteve's link, core string functions are lumpted in to standard types. This does not come up when you search for string functions.
    – Andrew S
    Oct 28 '16 at 0:43
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    To be clear: string.replace() is actually not deprecated on Python 3.
    – sboggs11
    Apr 27 '18 at 18:55
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    It's in the built-in types for 3.x docs.python.org/3.7/library/stdtypes.html#str.replace
    – JerodG
    Nov 5 '18 at 15:31
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    Sometimes people write "str.replace" when they mean [your string variable].replace. Because 'str' is also the name of the relevant class, this can be confusing.
    – TextGeek
    Aug 10 '19 at 15:52
362

As in 2.x, use str.replace().

Example:

>>> 'Hello world'.replace('world', 'Guido')
'Hello Guido'
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117

replace() is a method of <class 'str'> in python3:

>>> 'hello, world'.replace(',', ':')
'hello: world'
18

The replace() method in python 3 is used simply by:

a = "This is the island of istanbul"
print (a.replace("is" , "was" , 3))

#3 is the maximum replacement that can be done in the string#

>>> Thwas was the wasland of istanbul

# Last substring 'is' in istanbul is not replaced by was because maximum of 3 has already been reached
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    Remember that also you can not put 3 and it would change all the coincidences.
    – Ender Look
    Apr 27 '17 at 19:36
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You can use str.replace() as a chain of str.replace(). Think you have a string like 'Testing PRI/Sec (#434242332;PP:432:133423846,335)' and you want to replace all the '#',':',';','/' sign with '-'. You can replace it either this way(normal way),

>>> string = 'Testing PRI/Sec (#434242332;PP:432:133423846,335)'
>>> string = string.replace('#', '-')
>>> string = string.replace(':', '-')
>>> string = string.replace(';', '-')
>>> string = string.replace('/', '-')
>>> string
'Testing PRI-Sec (-434242332-PP-432-133423846,335)'

or this way(chain of str.replace())

>>> string = 'Testing PRI/Sec (#434242332;PP:432:133423846,335)'.replace('#', '-').replace(':', '-').replace(';', '-').replace('/', '-')
>>> string
'Testing PRI-Sec (-434242332-PP-432-133423846,335)'
3

Try this:

mystring = "This Is A String"
print(mystring.replace("String","Text"))
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FYI, when appending some characters to an arbitrary, position-fixed word inside the string (e.g. changing an adjective to an adverb by adding the suffix -ly), you can put the suffix at the end of the line for readability. To do this, use split() inside replace():

s="The dog is large small"
ss=s.replace(s.split()[3],s.split()[3]+'ly')
ss
'The dog is largely small'
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1

Official doc for str.replace of Python 3

official doc: Python 3's str.replace

str.replace(old, new[, count])

Return a copy of the string with all occurrences of substring old replaced by new. If the optional argument count is given, only the first count occurrences are replaced.

corresponding VSCode's syntax notice is:

enter image description here

str.replace(self: str, old, new, count) -> str

Two method to use str.replace

  • Method 1: use builtin str's replace -> str.replace(strVariable, old, new[, count])
replacedStr1 = str.replace(originStr, "from", "to")
  • Method 2: use str variable's replace -> strVariable.replace(old, new[, count])
replacedStr2 = originStr.replace("from", "to")

Full demo

code:

originStr = "Hello world"

# Use case 1: use builtin str's replace -> str.replace(strVariable, old, new[, count])
replacedStr1 = str.replace(originStr, "world", "Crifan Li")
print("case 1: %s -> %s" % (originStr, replacedStr1))

# Use case 2: use str variable's replace -> strVariable.replace(old, new[, count])
replacedStr2 = originStr.replace("world", "Crifan Li")
print("case 2: %s -> %s" % (originStr, replacedStr2))

output:

case 1: Hello world -> Hello Crifan Li
case 2: Hello world -> Hello Crifan Li

screenshot:

enter image description here

My related (Chinese) post: 【详解】Python 3中字符串的替换str.replace

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ss = s.replace(s.split()[1], +s.split()[1] + 'gy')
# should have no plus after the comma --i.e.,
ss = s.replace(s.split()[1], s.split()[1] + 'gy')
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  • 6
    While this code may answer the question, providing additional context regarding why and/or how it answers the question would significantly improve its long-term value. Please edit your answer to add some explanation. May 2 '16 at 21:38
  • The correct answer is previously stated string.replace works in python3.
    – jorfus
    Nov 16 '18 at 23:44
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Simple Replace:         .replace(old, new, count) .

text = "Apples taste Good."
print(text.replace('Apples', 'Bananas'))          # use .replace() on a variable
Bananas taste Good.          <---- Output

print("Have a Bad Day!".replace("Bad","Good"))    # Use .replace() on a string
Have a Good Day!             <----- Output

print("Mom is happy!".replace("Mom","Dad").replace("happy","angry"))  #Use many times
Dad is angry!                <----- Output

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