2

Suppose I have a pattern like

01:02:(anything):04:05

How can I construct a display filter in wireshark to filter it out?

Must I do this?

data[0:2]==01:02 and data[3:2]==04:05

3 Answers 3

5

To use wildcard, you may use . (dot).

Both the searches below will give same result,

data.data ~ "Hello World"
data.data ~ He..o.Wor.d

In your case 01:02:(anything):04:05, if we do not know length of (anything) this may not work.

2

You can use the matches operator. This allows you to define regular expression matches. Consider this:

eth.dst matches "\xff.*\xff"

This will look for ethernet destination addresses that have a 0xFF followed by something (or nothing) and another 0xFF within it. So for your case, you could do:

eth.addr matches "\x01\x02.*\x04\x05"

This will look for those byte sequences in either the source or destination MACs. You could refine it more by using a byte count if you wanted to.

2
  • 1
    Unfortunately, the matches operator doesn't work for the generic data though. The wireshark-filter man page states that, "[it is] only implemented for protocols and for protocol fields with a text string representation." Keep in mind that the data is the undissected remaining data in a packet, and not the beginning of the Ethernet frame. Ref: wireshark.org/docs/man-pages/wireshark-filter.html Jan 30, 2018 at 13:43
  • True. Based on how the question was written I jumped to the conclusion that he was looking at ethernet addresses. Jan 30, 2018 at 13:52
0

If you are not sure how many letter are in between the string you can use below filter

data.data ~ Hel.{1,}rld

or

data.data matches Hel.{1,}rld

here .{1,} means 1 or more characters in between & the letter should start from hel (in between anything) than ends with rld

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.