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I am quite new to Python and I researched as much as I could before I decided I should ask a question here. So here is the problem:

I am not sure what I am doing wrong with my RegEx. I wanted to try the re.findall() out, so I thought I would write a small script that would find phone numbers on webpages. Here is the code that I have right now.

    import re, urllib
    inurl = raw_input("Input a URL: ")
    web = urllib.urlopen(inurl)
    web.readlines()

    numbers = re.findall("/\d{3}.\d{3}.\d{4}/g", web)
    for itm in numbers
        print itm

Not sure what is happening. I keep getting the error of "expected string or buffer" for the line that has

    numbers = re.findall(".....", web)

Thanks in advance.

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2  
I think you need to drop the forward slashes and the g –  Joe Oct 11 '11 at 2:59

2 Answers 2

up vote 3 down vote accepted

/\d{3}.\d{3}.\d{4}/g - The /../ part is to identify regex in other languages like Ruby and g is a flag, also not applicable to Python. Try removing them and use just \d{3}.\d{3}.\d{4}

Also I think you wanted to use the output / response in the findall and not just web, which is why you are seeing the expected string or buffer. You should also remove the line that just does web.readlines()

So what you may want to do will be something like this:

numbers = re.findall("\d{3}.\d{3}.\d{4}", web.read())
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you just fixed my problem, that was it. Thank you so much. I used a regex generator. I had no idea that the Ruby was in there. Thank you. I have a question. I thought the readlines() would read all the lines and then put it into a list... or did I miss read it at doc.python.org? lol I will re-read the documentation, thank you again! –  inoobdotcom Oct 11 '11 at 3:41
"\d{3}.\d{3}.\d{4}" write raw string r"\d{3}.\d{3}.\d{4}"
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