Delete all "\n" occurrences with sed - macos

I would like to delete all "\n" (quotes, new line, quotes) in a text file.
I have tried:
sed 's/"\n"//g' < in > out
and also sed '/"\n"/d' < in > out but non of those seds worked.
What am I doing wrong?

This works with GNU sed on Linux: I don't have a Mac to test with.
sed '
# this reads the whole file into pattern space
:a; N; $ bb; ba; :b
# *now* make the replacement
s/"\n"//g
' <<END
one
two"
"three
four"
five
"six
END
one
twothree
four"
five
"six
This perl command accomplishes the same thing:
perl -0777 -pe 's/"\n"//g'

This awk-oneliner works here, you can give it a try:
awk -F'"\n"' -v RS='\0' -v ORS="" '{$1=$1;print}' file
a small test: tested with gawk
kent$ cat f
foo"
"bar"
"bla"
new line should be kept
this too
kent$ awk -F'"\n"' -v RS='\0' -v ORS="" '{$1=$1;print}' f
foo bar bla"
new line should be kept
this too
If you don't want to have the space between foo and bar blah .., add -v OFS="" to awk

Try this -- you need to escape the backslash to make it literal.
sed 's/"\\n"//g' < in > out
Verified on OSX.

The accepted answer was marked as such because of the Perl command it contains.
The sed command doesn't actually work on OSX, because it uses features specific to GNU sed, whereas OSX use BSD sed.
An equivalent answer requires only a few tweaks - note that this will work with both BSD and GNU sed:
Using multiple -e options:
sed -e ':a' -e '$!{N;ba' -e '}; s/"\n"//g' < in > out
Or, using an ANSI C-quoted string in Bash:
sed $':a\n$!{N;ba\n}; s/"\\n"//g' < in > out
Or, using a multi-line string literal:
sed ':a
$!{N;ba
}; s/"\n"//g' < in > out
BSD sed requires labels (e.g., :a) and branching commands (e.g., b) to be terminated with an actual newline (whereas in GNU sed a ; suffices), or, alternatively, for the script to be broken into multiple -e options, with each part ending where a newline is required.
For a detailed discussion of the differences between GNU and BSD sed, see https://stackoverflow.com/a/24276470/45375
$':a\n$!{N;ba\n}' is a common sed idiom for reading all input lines into the so-called pattern space (buffer on which (subsequent) commands operate):
:a is a label that can be branched to
$! matches every line but the last
{N;ba\n} keeps building the buffer by adding the current line (N) to it, then branching back to label :a to repeat the cycle.
Once the last line is reached, no branching is performed, and the buffer at that point contains all input lines, at which point the desired substitution (s/"\n"//g) is performed on the entire buffer.
As for why the OP's approach didn't work:
sed reads files line by line by default, so by default it can only operate on one line at a time.
In order to be able to replace newline chars. - i.e., to operate across multiple lines - you must explicitly read multiple/all lines first, as above.

instead of sed you could also use tr, I've tested it and for me it worked
tr -d '"\\n"' < input.txt > output.txt

Related

Read in a file AS a single line [duplicate]

How can I replace a newline ("\n") with a space ("") using the sed command?
I unsuccessfully tried:
sed 's#\n# #g' file
sed 's#^$# #g' file
How do I fix it?
sed is intended to be used on line-based input. Although it can do what you need.
A better option here is to use the tr command as follows:
tr '\n' ' ' < input_filename
or remove the newline characters entirely:
tr -d '\n' < input.txt > output.txt
or if you have the GNU version (with its long options)
tr --delete '\n' < input.txt > output.txt
Use this solution with GNU sed:
sed ':a;N;$!ba;s/\n/ /g' file
This will read the whole file in a loop (':a;N;$!ba), then replaces the newline(s) with a space (s/\n/ /g). Additional substitutions can be simply appended if needed.
Explanation:
sed starts by reading the first line excluding the newline into the pattern space.
Create a label via :a.
Append a newline and next line to the pattern space via N.
If we are before the last line, branch to the created label $!ba ($! means not to do it on the last line. This is necessary to avoid executing N again, which would terminate the script if there is no more input!).
Finally the substitution replaces every newline with a space on the pattern space (which is the whole file).
Here is cross-platform compatible syntax which works with BSD and OS X's sed (as per #Benjie comment):
sed -e ':a' -e 'N' -e '$!ba' -e 's/\n/ /g' file
As you can see, using sed for this otherwise simple problem is problematic. For a simpler and adequate solution see this answer.
Fast answer
sed ':a;N;$!ba;s/\n/ /g' file
:a create a label 'a'
N append the next line to the pattern space
$! if not the last line, ba branch (go to) label 'a'
s substitute, /\n/ regex for new line, / / by a space, /g global match (as many times as it can)
sed will loop through step 1 to 3 until it reach the last line, getting all lines fit in the pattern space where sed will substitute all \n characters
Alternatives
All alternatives, unlike sed will not need to reach the last line to begin the process
with bash, slow
while read line; do printf "%s" "$line "; done < file
with perl, sed-like speed
perl -p -e 's/\n/ /' file
with tr, faster than sed, can replace by one character only
tr '\n' ' ' < file
with paste, tr-like speed, can replace by one character only
paste -s -d ' ' file
with awk, tr-like speed
awk 1 ORS=' ' file
Other alternative like "echo $(< file)" is slow, works only on small files and needs to process the whole file to begin the process.
Long answer from the sed FAQ 5.10
5.10. Why can't I match or delete a newline using the \n escape
sequence? Why can't I match 2 or more lines using \n?
The \n will never match the newline at the end-of-line because the
newline is always stripped off before the line is placed into the
pattern space. To get 2 or more lines into the pattern space, use
the 'N' command or something similar (such as 'H;...;g;').
Sed works like this: sed reads one line at a time, chops off the
terminating newline, puts what is left into the pattern space where
the sed script can address or change it, and when the pattern space
is printed, appends a newline to stdout (or to a file). If the
pattern space is entirely or partially deleted with 'd' or 'D', the
newline is not added in such cases. Thus, scripts like
sed 's/\n//' file # to delete newlines from each line
sed 's/\n/foo\n/' file # to add a word to the end of each line
will NEVER work, because the trailing newline is removed before
the line is put into the pattern space. To perform the above tasks,
use one of these scripts instead:
tr -d '\n' < file # use tr to delete newlines
sed ':a;N;$!ba;s/\n//g' file # GNU sed to delete newlines
sed 's/$/ foo/' file # add "foo" to end of each line
Since versions of sed other than GNU sed have limits to the size of
the pattern buffer, the Unix 'tr' utility is to be preferred here.
If the last line of the file contains a newline, GNU sed will add
that newline to the output but delete all others, whereas tr will
delete all newlines.
To match a block of two or more lines, there are 3 basic choices:
(1) use the 'N' command to add the Next line to the pattern space;
(2) use the 'H' command at least twice to append the current line
to the Hold space, and then retrieve the lines from the hold space
with x, g, or G; or (3) use address ranges (see section 3.3, above)
to match lines between two specified addresses.
Choices (1) and (2) will put an \n into the pattern space, where it
can be addressed as desired ('s/ABC\nXYZ/alphabet/g'). One example
of using 'N' to delete a block of lines appears in section 4.13
("How do I delete a block of specific consecutive lines?"). This
example can be modified by changing the delete command to something
else, like 'p' (print), 'i' (insert), 'c' (change), 'a' (append),
or 's' (substitute).
Choice (3) will not put an \n into the pattern space, but it does
match a block of consecutive lines, so it may be that you don't
even need the \n to find what you're looking for. Since GNU sed
version 3.02.80 now supports this syntax:
sed '/start/,+4d' # to delete "start" plus the next 4 lines,
in addition to the traditional '/from here/,/to there/{...}' range
addresses, it may be possible to avoid the use of \n entirely.
A shorter awk alternative:
awk 1 ORS=' '
Explanation
An awk program is built up of rules which consist of conditional code-blocks, i.e.:
condition { code-block }
If the code-block is omitted, the default is used: { print $0 }. Thus, the 1 is interpreted as a true condition and print $0 is executed for each line.
When awk reads the input it splits it into records based on the value of RS (Record Separator), which by default is a newline, thus awk will by default parse the input line-wise. The splitting also involves stripping off RS from the input record.
Now, when printing a record, ORS (Output Record Separator) is appended to it, default is again a newline. So by changing ORS to a space all newlines are changed to spaces.
GNU sed has an option, -z, for null-separated records (lines). You can just call:
sed -z 's/\n/ /g'
The Perl version works the way you expected.
perl -i -p -e 's/\n//' file
As pointed out in the comments, it's worth noting that this edits in place. -i.bak will give you a backup of the original file before the replacement in case your regular expression isn't as smart as you thought.
Who needs sed? Here is the bash way:
cat test.txt | while read line; do echo -n "$line "; done
In order to replace all newlines with spaces using awk, without reading the whole file into memory:
awk '{printf "%s ", $0}' inputfile
If you want a final newline:
awk '{printf "%s ", $0} END {printf "\n"}' inputfile
You can use a character other than space:
awk '{printf "%s|", $0} END {printf "\n"}' inputfile
tr '\n' ' '
is the command.
Simple and easy to use.
Three things.
tr (or cat, etc.) is absolutely not needed. (GNU) sed and (GNU) awk, when combined, can do 99.9% of any text processing you need.
stream != line based. ed is a line-based editor. sed is not. See sed lecture for more information on the difference. Most people confuse sed to be line-based because it is, by default, not very greedy in its pattern matching for SIMPLE matches - for instance, when doing pattern searching and replacing by one or two characters, it by default only replaces on the first match it finds (unless specified otherwise by the global command). There would not even be a global command if it were line-based rather than STREAM-based, because it would evaluate only lines at a time. Try running ed; you'll notice the difference. ed is pretty useful if you want to iterate over specific lines (such as in a for-loop), but most of the times you'll just want sed.
That being said,
sed -e '{:q;N;s/\n/ /g;t q}' file
works just fine in GNU sed version 4.2.1. The above command will replace all newlines with spaces. It's ugly and a bit cumbersome to type in, but it works just fine. The {}'s can be left out, as they're only included for sanity reasons.
Why didn't I find a simple solution with awk?
awk '{printf $0}' file
printf will print the every line without newlines, if you want to separate the original lines with a space or other:
awk '{printf $0 " "}' file
The answer with the :a label ...
How can I replace a newline (\n) using sed?
... does not work in freebsd 7.2 on the command line:
( echo foo ; echo bar ) | sed ':a;N;$!ba;s/\n/ /g'
sed: 1: ":a;N;$!ba;s/\n/ /g": unused label 'a;N;$!ba;s/\n/ /g'
foo
bar
But does if you put the sed script in a file or use -e to "build" the sed script...
> (echo foo; echo bar) | sed -e :a -e N -e '$!ba' -e 's/\n/ /g'
foo bar
or ...
> cat > x.sed << eof
:a
N
$!ba
s/\n/ /g
eof
> (echo foo; echo bar) | sed -f x.sed
foo bar
Maybe the sed in OS X is similar.
Easy-to-understand Solution
I had this problem. The kicker was that I needed the solution to work on BSD's (Mac OS X) and GNU's (Linux and Cygwin) sed and tr:
$ echo 'foo
bar
baz
foo2
bar2
baz2' \
| tr '\n' '\000' \
| sed 's:\x00\x00.*:\n:g' \
| tr '\000' '\n'
Output:
foo
bar
baz
(has trailing newline)
It works on Linux, OS X, and BSD - even without UTF-8 support or with a crappy terminal.
Use tr to swap the newline with another character.
NULL (\000 or \x00) is nice because it doesn't need UTF-8 support and it's not likely to be used.
Use sed to match the NULL
Use tr to swap back extra newlines if you need them
You can use xargs:
seq 10 | xargs
or
seq 10 | xargs echo -n
cat file | xargs
for the sake of completeness
If you are unfortunate enough to have to deal with Windows line endings, you need to remove the \r and the \n:
tr '\r\n' ' ' < $input > $output
I'm not an expert, but I guess in sed you'd first need to append the next line into the pattern space, bij using "N". From the section "Multiline Pattern Space" in "Advanced sed Commands" of the book sed & awk (Dale Dougherty and Arnold Robbins; O'Reilly 1997; page 107 in the preview):
The multiline Next (N) command creates a multiline pattern space by reading a new line of input and appending it to the contents of the pattern space. The original contents of pattern space and the new input line are separated by a newline. The embedded newline character can be matched in patterns by the escape sequence "\n". In a multiline pattern space, the metacharacter "^" matches the very first character of the pattern space, and not the character(s) following any embedded newline(s). Similarly, "$" matches only the final newline in the pattern space, and not any embedded newline(s). After the Next command is executed, control is then passed to subsequent commands in the script.
From man sed:
[2addr]N
Append the next line of input to the pattern space, using an embedded newline character to separate the appended material from the original contents. Note that the current line number changes.
I've used this to search (multiple) badly formatted log files, in which the search string may be found on an "orphaned" next line.
In response to the "tr" solution above, on Windows (probably using the Gnuwin32 version of tr), the proposed solution:
tr '\n' ' ' < input
was not working for me, it'd either error or actually replace the \n w/ '' for some reason.
Using another feature of tr, the "delete" option -d did work though:
tr -d '\n' < input
or '\r\n' instead of '\n'
I used a hybrid approach to get around the newline thing by using tr to replace newlines with tabs, then replacing tabs with whatever I want. In this case, " " since I'm trying to generate HTML breaks.
echo -e "a\nb\nc\n" |tr '\n' '\t' | sed 's/\t/ <br> /g'`
You can also use this method:
sed 'x;G;1!h;s/\n/ /g;$!d'
Explanation
x - which is used to exchange the data from both space (pattern and hold).
G - which is used to append the data from hold space to pattern space.
h - which is used to copy the pattern space to hold space.
1!h - During first line won't copy pattern space to hold space due to \n is
available in pattern space.
$!d - Clear the pattern space every time before getting the next line until the
the last line.
Flow
When the first line get from the input, an exchange is made, so 1 goes to hold space and \n comes to pattern space, appending the hold space to pattern space, and a substitution is performed and deletes the pattern space.
During the second line, an exchange is made, 2 goes to hold space and 1 comes to the pattern space, G append the hold space into the pattern space, h copy the pattern to it, the substitution is made and deleted. This operation is continued until EOF is reached and prints the exact result.
Bullet-proof solution. Binary-data-safe and POSIX-compliant, but slow.
POSIX sed
requires input according to the
POSIX text file
and
POSIX line
definitions, so NULL-bytes and too long lines are not allowed and each line must end with a newline (including the last line). This makes it hard to use sed for processing arbitrary input data.
The following solution avoids sed and instead converts the input bytes to octal codes and then to bytes again, but intercepts octal code 012 (newline) and outputs the replacement string in place of it. As far as I can tell the solution is POSIX-compliant, so it should work on a wide variety of platforms.
od -A n -t o1 -v | tr ' \t' '\n\n' | grep . |
while read x; do [ "0$x" -eq 012 ] && printf '<br>\n' || printf "\\$x"; done
POSIX reference documentation:
sh,
shell command language,
od,
tr,
grep,
read,
[,
printf.
Both read, [, and printf are built-ins in at least bash, but that is probably not guaranteed by POSIX, so on some platforms it could be that each input byte will start one or more new processes, which will slow things down. Even in bash this solution only reaches about 50 kB/s, so it's not suited for large files.
Tested on Ubuntu (bash, dash, and busybox), FreeBSD, and OpenBSD.
In some situations maybe you can change RS to some other string or character. This way, \n is available for sub/gsub:
$ gawk 'BEGIN {RS="dn" } {gsub("\n"," ") ;print $0 }' file
The power of shell scripting is that if you do not know how to do it in one way you can do it in another way. And many times you have more things to take into account than make a complex solution on a simple problem.
Regarding the thing that gawk is slow... and reads the file into memory, I do not know this, but to me gawk seems to work with one line at the time and is very very fast (not that fast as some of the others, but the time to write and test also counts).
I process MB and even GB of data, and the only limit I found is line size.
Finds and replaces using allowing \n
sed -ie -z 's/Marker\n/# Marker Comment\nMarker\n/g' myfile.txt
Marker
Becomes
# Marker Comment
Marker
You could use xargs — it will replace \n with a space by default.
However, it would have problems if your input has any case of an unterminated quote, e.g. if the quote signs on a given line don't match.
On Mac OS X (using FreeBSD sed):
# replace each newline with a space
printf "a\nb\nc\nd\ne\nf" | sed -E -e :a -e '$!N; s/\n/ /g; ta'
printf "a\nb\nc\nd\ne\nf" | sed -E -e :a -e '$!N; s/\n/ /g' -e ta
To remove empty lines:
sed -n "s/^$//;t;p;"
Using Awk:
awk "BEGIN { o=\"\" } { o=o \" \" \$0 } END { print o; }"
A solution I particularly like is to append all the file in the hold space and replace all newlines at the end of file:
$ (echo foo; echo bar) | sed -n 'H;${x;s/\n//g;p;}'
foobar
However, someone said me the hold space can be finite in some sed implementations.
Replace newlines with any string, and replace the last newline too
The pure tr solutions can only replace with a single character, and the pure sed solutions don't replace the last newline of the input. The following solution fixes these problems, and seems to be safe for binary data (even with a UTF-8 locale):
printf '1\n2\n3\n' |
sed 's/%/%p/g;s/#/%a/g' | tr '\n' # | sed 's/#/<br>/g;s/%a/#/g;s/%p/%/g'
Result:
1<br>2<br>3<br>
It is sed that introduces the new-lines after "normal" substitution. First, it trims the new-line char, then it processes according to your instructions, then it introduces a new-line.
Using sed you can replace "the end" of a line (not the new-line char) after being trimmed, with a string of your choice, for each input line; but, sed will output different lines. For example, suppose you wanted to replace the "end of line" with "===" (more general than a replacing with a single space):
PROMPT~$ cat <<EOF |sed 's/$/===/g'
first line
second line
3rd line
EOF
first line===
second line===
3rd line===
PROMPT~$
To replace the new-line char with the string, you can, inefficiently though, use tr , as pointed before, to replace the newline-chars with a "special char" and then use sed to replace that special char with the string you want.
For example:
PROMPT~$ cat <<EOF | tr '\n' $'\x01'|sed -e 's/\x01/===/g'
first line
second line
3rd line
EOF
first line===second line===3rd line===PROMPT~$

How to insert characters in the middle of every two consecutive repeating characters?

I have a file like this:
user$ cat -t file
0.1^I^I^I0.2
I wish to edit the file so that every time two consecutive tabs appear, the characters "NA" are inserted in the middle of the two tabs. The number of consecutive tab characters that could appear is arbitrary (in this example there are three tabs in succession but it could be two or more than three).
I've tried doing this with sed (BSD sed):
user$ cat -t <(sed $'s/\t\t/\tNA\t/g' file)
But this only inserts the desired characters in the middle of the first two consecutive tabs yielding this output:
0.1^INA^I^I0.2
I also need the characters to be inserted in the middle of the second pair of consecutive tabs in order to get this output:
0.1^INA^INA^I0.2
Would prefer to use sed for this, but other tools such as awk or perl could be used.
The problem is that sed doesn't do overlapping matches. We need to repeat the substitution until all matches have been made. Thus, try:
$ cat -t <(sed ':a; s/\t\t/\tNA\t/g; ta' file)
0.1^INA^INA^I0.2
Consider \t\t\t. The substitution command matches the first \t\t and replaces it with \tNA\t. The problem is that, with the g option, the next substitution can only start after those first two tabs. Overlapping substitutions are not supported. That is why we need to add the label and branching commands as above.
How it works
:a
This creates a label a.
s/\t\t/\tNA\t/g
This does the substitution you want.
ta
If the preceding substitution command successfully made a substitution, this tells sed to jump back to label a. Consequently, the substitution command will be repeated as many times as necessary.
BSD Version
With thanks to mikekatz45, the BSD version is:
cat -t <(sed -e :a -e $'s/\t\t/\tNA\t/g' -e ta file)
Note that, while the $'...' construct is not POSIX, it will work under bash, ksh, and zsh.
Perl version using a 0-width lookahead to make the matches not overlap:
$ echo -e "0.1\t\t\t0.2" | perl -pe 's/\t(?=\t)/\tNA/g' | cat -t
0.1^INA^INA^I0.2
Or for modifying a file in-place:
$ perl -pi -e 's/\t(?=\t)/\tNA/g' blah.txt

FreeBSD sed with newline and backslash in substitute

As the sed implemented in FreeBSD does not support any escape sequence in the replace pattern, I have to use "\'$'\n" to represent a newline and "'$'\n". It does support backslash by "\" though.
Unfortunately, combining the newline with backslash cause error for me. For example, I want to add a line starts with a tab and "line added.\" after every line with "key:\", I wrote:
#!/bin/bash
sed -E 's/^key:\\$/&\'$'\n'$'\tline added.\\/g' file
It thrown me an error like:
sed: 2: "s/^key:\\$/&\
line add ...": unterminated substitute in regular expression
How do I combine both newline and backslash in the substitute argument of sed?
Thanks a ton!
The example is failing because of what appears to be unintended quoting in the last segment.
$'\tline added.\\/g'
The $'...' construct evaluates the entire last section, meaning that it processes \\ leaving the sed command ending in \/g.
To get the intended behavior either terminate the C-style escape, and restart the single quoted string
$'\t''line added.\\/g'
or escape the \\
$'\tline added.\\\\/g'
An alternative would be to enclose the entire command in the
$'...' construct.
sed $'s/^key:\\$/&\\\\\\\n\tline added.\\\\/'
A portable alternative is to use literal characters, new-line and tab.
(perhaps with a comment clarifying it as intentional)
sed 's/^key:\\$/&\\\
line added.\\/'
To avoid duplicates when run multiple times a slightly more complicated script is needed.
(note that n will exit the script if run on the last line)
sed '/^key:\\$/ {
n
/^ line added\.\\$/!i\
line added.\\
}'
$'...' is present in FreeBSD sh, MirBSD ksh, ksh93 (Illumos sh), zsh, and bash
You're trying to use the wrong tool. sed is for simple substitutions on individual lines, that is all. For anything else you should be using awk.
to add a line starts with a tab and "line added.\" after every line with "key:\" would just be:
awk '{print} /key:\\/{print "\tline added.\\"}' file
The above will work in all awks on all OSes.
To NOT do this on a subsequent run that did it previously would be:
awk -v n='\tline added:\\' 'p~/key:\\/ && $0!=n{print n} {print; p=$0}'
e.g.:
$ cat file1
foo
key:\
bar
$ awk -v n='\tline added:\\' 'p~/key:\\/ && $0!=n{print n} {print; p=$0}' file1 > file2
$ cat file2
foo
key:\
line added:\
bar
$ awk -v n='\tline added:\\' 'p~/key:\\/ && $0!=n{print n} {print; p=$0}' file2
foo
key:\
line added:\
bar
p for previous, n for new. The above works by just waiting until the line AFTER key:\\ to insert the new line and only does the insertion if the current line isn't already the line to be inserted. If the key line can appear at the end of the file then you'd need to test for key and add the new line in an END statement too: END{if (p~/key:\\/) print n}.

sed - remove line break if line does not end on \"

I have a tsv.-file and there are some lines which do not end with an '"'. So now I would like to remove every line break which is not directly after an '"'.
How could I accomplish that with sed? Or any other bash shell program...
Kind regards,
Snafu
This sed command should do it:
sed '/"$/!{N;s/\n//}' file
It says: on every line not matching "$ do:
read next line, append it to pattern space;
remove linebreak between the two lines.
Example:
$ cat file.txt
"test"
"qwe
rty"
foo
$ sed '/"$/!{N;s/\n//}' file.txt
"test"
"qwerty"
foo
To elaborate on #Lev's answer, the BSD (OSX) version of sed is less forgiving about the command syntax within the curly braces -- the semicolon command separator is required for both commands:
sed '/"$/!{N;s/\n//;}' file.txt
per the documentation here -- an excerpt:
Following an address or address range, sed accepts curly braces '{...}' so several commands may be applied to that line or to the lines matched by the address range. On the command line, semicolons ';' separate each instruction and must precede the closing brace.
give this awk one-liner a try:
awk '{printf "%s%s",$0,(/"$/?"\n":"")}' file
test
kent$ cat f
"foo"
"bar"
"a long
text with
many many
lines"
"lalala"
kent$ awk '{printf "%s%s",$0,(/"$/?"\n":"")}' f
"foo"
"bar"
"a longtext withmany manylines"
"lalala"
This might work for you (GNU sed):
sed ':a;/"$/!{N;s/\n//;ta}' file
This checks if the last character of the pattern space is a " and if not appends another line, removes a newline and repeats until the condition is met or the end-of-file is encountered.
An alternative is:
sed -r ':a;N;s/([^"])\n/\1/;ta;P;D' file
The mechanism is left for the reader to ponder.

Bash - remove all lines beginning with 'P'

I have a text file that's about 300KB in size. I want to remove all lines from this file that begin with the letter "P". This is what I've been using:
> cat file.txt | egrep -v P*
That isn't outputting to console. I can use cat on the file without another other commands and it prints out fine. My final intention being to:
> cat file.txt | egrep -v P* > new.txt
No error appears, it just doesn't print anything out and if I run the 2nd command, new.txt is empty.
I should say I'm running Windows 7 with Cygwin installed.
Explanation
use ^ to anchor your pattern to the beginning of the line ;
delete lines matching the pattern using sed and the d flag.
Solution #1
cat file.txt | sed '/^P/d'
Better solution
Use sed-only:
sed '/^P/d' file.txt > new.txt
With awk:
awk '!/^P/' file.txt
Explanation
The condition starts with an ! (negation), that negates the following pattern ;
/^P/ means "match all lines starting with a capital P",
So, the pattern is negated to "ignore lines starting with a capital P".
Finally, it leverage awk's behavior when { … } (action block) is missing, that is to print the record validating the condition.
So, to rephrase, it ignores lines starting with a capital P and print everything else.
Note
sed is line oriented and awk column oriented. For your case you should use the first one, see Edouard Lopez's reponse.
Use sed with inplace substitution (for GNU sed, will also for your cygwin)
sed -i '/^P/d' file.txt
BSD (Mac) sed
sed -i '' '/^P/d' file.txt
Use start of line mark and quotes:
cat file.txt | egrep -v '^P.*'
P* means P zero or more times so together with -v gives you no lines
^P.* means start of line, then P, and any char zero or more times
Quoting is needed to prevent shell expansion.
This can be shortened to
egrep -v ^P file.txt
because .* is not needed, therefore quoting is not needed and egrep can read data from file.
As we don't use extended regular expressions grep will also work fine
grep -v ^P file.txt
Finally
grep -v ^P file.txt > new.txt
This works:
cat file.txt | egrep -v -e '^P'
-e indicates expression.

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