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How can I convert unstructured data into structured data? For example email contacts, from an unstructured text, to a structured format.

Are there any algorithms to do this?

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please provide some more details.. something like, sample input and sample output will be helpful in understanding your problem. What and why do u want to convert, by email example do you mean getting all ids removing the domain part or something else, or you just want a CSV of the email ids. Put some more details please... – mkamthan Mar 24 '10 at 5:57
Please edit the description to explain what programming language you're intending to use, and (if so) tag your question with that language. – bignose Mar 24 '10 at 6:10
@mkamthan: basically getting the ids and storing in a email field in the database. – Jonathan Apr 10 '10 at 7:59
@bignose: i just like to know the idea not yet decided on the language to do the programming – Jonathan Apr 10 '10 at 8:00
do u mean a contact database? A table having 2 (or more) columns: Name | Email | ... i think you problem is of Parsing. Once we can have your sample input, we can think about the solution. – mkamthan Apr 12 '10 at 9:59

There's no generic algorithm to "take unstructured data and convert it to structured data", no. It's highly dependent on what the possible range of input is, and what the desired structure is, and what conversions need to be applied, etc.

The class of problem is called "parsing": you need to construct a parser for the specific inputs you expect, and use that parser to generate structure from what it discovers about the input you get.

Your programming language will likely have parsing libraries available to assist with constructing a specific parser.

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can you tell we any 3rd party parsers that can do this? – Jonathan Mar 24 '10 at 5:58

I've created a small package in Python called MassTextExtractor. To install it you just need to have pip and write in your terminal:

sudo pip install MassTextExtractor

Let's imagine a small sample from 3 poorly structured files:

file 1:

COMPETITION: 2nd cross-country

PLACE:  Russia

WEATHER: good   
DATE:   28-01-2007

file 2:

DAY: March 22, 2006

file 3:

WEATHER: cloudy
DATE: 19 of Novembro of 2005

An example to extract the fields 'competition' and 'place' would be:

from MassTextExtractor import TextsParser

# tag competition field lines
file_dirs = ["./file_1.txt", "./file_2.txt", "./file_3.txt"]
flags = ["Triathlon", "COMPETITION:"]
competition = TextsParser(file_dirs, flags)

# clean parts of the line
competition.switchers = [("COMPETITION:", "")]

# break part of the line
competition.breakers = [("PLACE", 0)]

# tag place field lines
flags = ["Japan", "PLACE:"]
place = TextsParser(file_dirs, flags)

# break part of the line
place.breakers = [("PLACE:", 1)]

# clean parts of the line
place.switchers = [("PLACE:", "")]

print competition.return_texts_field_lines()
print place.return_texts_field_lines()

This may seem excessive pedantic, but I believe it is a good solution has a last resort when obtaining structured information from large quantities of poorly structured files.

I'm kind of new at this so the code may have bugs. If you find any issue or have any doubt be free to raise an issue on its GitHub page.

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