in reply to Re: Happy New Year!
in thread Happy New Year!

Yup, very nice detailed explanation, and

<Reveal this spoiler or all spoilers in this node or all in this thread>

## but I must admit that I needed a -MO=Deparse to get to that 's<>><\
+>>e'
## thingy. I still don't understand how can it be equivalent to
## 's//<ARGV>;/e'.

[download]

s<>><\>>e is a s///e where the first pair of delimiters is <>, and the second pair is >>. The replacement eval is <>, because the \ in <\> gets removed earlier as it's right before the same character as the delimiter. It's the same form as s()/<>/e.

I hope you liked it.

In Section Obfuscated Code