1

I have 3 emails which have following in email body:

1st email

2nd email

3rd email

= 

means new line.There are 3 cases:

Case 1 machine name is on the next line

Example

 MACHINE: =
ldnmdsbatchxl01

Case 2

machine name is on the same line:

MACHINE: p2prog06

Case 3

Part of the machine is in the same line, part is in next line

MACHINE: p1prog=
07

Following works for first 2 and partial for 3rd case:regex2 = r'\bMACHINE:\s*(?:=.*)?\s*([^<^\n ]+)

in 3rd i'm getting p1prog=

> Desired output:

p1prog07
ldnmdsbatchxl01
p2prog06

Thanks

if resp == 'OK':
        email_body = data[0][1].decode('utf-8')
        mail = email.message_from_string(email_body)
        #get all emails with words "PA1" or "PA2" in subject
        if mail["Subject"].find("PA1") > 0 or mail["Subject"].find("PA2") > 0:
                  #search email body for job name (string after word "JOB")
          regex1 = r'(?<!^)JOB:\s*(\S+)'
          regex2 = r'\bMACHINE:\s*(?:=.*)?\s*([^<^\n ]+)|$'
          c=re.findall(regex2, email_body)[0]#,re.DOTALL)
          a=re.findall(regex1 ,email_body)
  • Try m=re.search(r'\bMACHINE:\s*(.*(?:\s*^\d+)?)', s, re.M), if m: print(m.group(1).replace("\n", "").replace("\r", "")) (regex demo) – Wiktor Stribiżew Jan 11 at 11:10
  • Thanks, it works for 3rd case, but it doesn't print 1st and 2nd, how to combine your regex with mine ? – user10205566 Jan 11 at 11:16
  • See ideone.com/cLw0kp. It prints all of them. – Wiktor Stribiżew Jan 11 at 11:19
  • email_body is variable where all email bodies with MACHINE names are stored (examples are in link i posted):for s in email_body: #print s m=re.search(r'\bMACHINE:\s*(.*(?:\s*^\d+)?)', s, re.M) if m: print("Result: " + m.group(1).replace("\n", "").replace("\r", "")) and getting nothing – user10205566 Jan 11 at 11:28
  • Maybe ideone.com/TnOX0I will work? – Wiktor Stribiżew Jan 11 at 11:30
0

You may use

import re
email = 'MACHINE: =\nldnmdsbatchxl01\n\n\nMACHINE: p2prog06\n\n\nMACHINE: p1prog=^M\n07'
res = list(set([re.sub(r'=(?:\^M)?|[\r\n]+', '', x) for x in re.findall(r'\bMACHINE:\s*(.*(?:(?:\r\n?|\n)\S+)?)', email, re.M)]))
print(res)
# => ['ldnmdsbatchxl01', 'p2prog06', 'p1prog07']

See the Python demo

The regex used is \bMACHINE:\s*(.*(?:(?:\r\n?|\n)\S+)?):

  • \bMACHINE - whole word MACHINE
  • : - a : char
  • \s* - 0+ whitespaces
  • (.*(?:(?:\r\n?|\n)\S+)?) - Group 1 (this substring will be returned by re.findall):
    • .* - 0+ chars other than line break chars
    • (?:(?:\r\n?|\n)\S+)? - an optional substring:
      • (?:\r\n?|\n) - a CRLF, LF or CR line break sequence
      • \S+ - 1+ non-whitespace chars

The re.sub(r'=(?:\^M)?|[\r\n]+', '', x) removes = or =^M and CR/LF symbols from the Group 1 value.

To get unique values, use list(set(res)).

  • 1
    yes, that did the trick !!, thanks a lot Wiktor – user10205566 Jan 11 at 12:18
0

Short answer:

regexp = re.compile('MACHINE:\s={0,1}\s{0,1}((\S+=\^M\s\S+|\S+))')
value = regexp.search(data)[1]
value.replace('=^M\n', ''))

Long answer:

Assume we have data from your examples:

data = """
BFAILURE       JOB: p2_batch_excel_quants_fx_daily_vol_check_0800 MACHINE: =
ldnmdsbatchxl01 EXITCODE:  268438455
(...)
RUNALARM      JOB: p2_credit_qv_curve_snap MACHINE: p2prog06

Attachments:
(...)
[11/01/2019 08:15:09]      CAUAJM_I_40245 EVENT: ALARM            ALARM: JO=^M
BFAILURE       JOB: p1_static_console_row_based_permissions MACHINE: p1prog=^M
07        EXITCODE:  1<br>^M
"""

Then we may use code:

import re

regexp = re.compile('MACHINE:\s={0,1}\s{0,1}((\S+=\^M\s\S+|\S+))')

for d in data.split("(...)"):
    value = regexp.search(d)[1]
    print(value.replace('=^M\n', ''))

As you see regexp match =^M\n too, so we need to remove it after.

output:

ldnmdsbatchxl01
p2prog06
p1prog07

EDIT:

if your data contains many email bodies in one string:

import re

regexp = re.compile('MACHINE:\s={0,1}\s{0,1}((\S+=\^M\s\S+|\S+))')

matches = regexp.findall(data)
print(matches)

print('---')

for m in matches:
    print(m[0].replace('=^M\n', ''))

produce:

[('ldnmdsbatchxl01', 'ldnmdsbatchxl01'), ('p2prog06', 'p2prog06'), ('p1prog=^M\n07', 'p1prog=^M\n07')]
---
ldnmdsbatchxl01
p2prog06
p1prog07
  • email_body = data[0][1].decode('utf-8') regexp = re.compile('MACHINE:\s={0,1}\s{0,1}((\S+=\^M\s\S+|\S+))') for d in email_body: value = regexp.search(d) print(value) getting bunch of None email_body is list containing message body for multiple emails – user10205566 Jan 11 at 11:47
  • if you have many emails bodies in one string try: regexp = re.compile('MACHINE:\s={0,1}\s{0,1}((\S+=\^M\s\S+|\S+))') machines =regexp.findall(email_body) – Adam Puza Jan 11 at 11:51
  • getting [(u'p1prog=', u'p1prog='), (u'p1prog=', u'p1prog=')] [(u'=', u'='), (u'=', u'=')] – user10205566 Jan 11 at 11:56
  • (u'p1prog=', u'p1prog=') is what is expected. Look at edited post above. And about u'=', - I can't help without knowing how look line that produces this. – Adam Puza Jan 11 at 11:59
  • no, i need p1prog07 and ldnmdsbatchxl01 ( i have these two in email_body variable) – user10205566 Jan 11 at 12:01

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