Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I would like know how I can read each line of a csv file from the second line to the end of file in a bash script.

I know how to read a file in bash:

while read line
 do   
   echo -e "$line\n"
done < file.csv

But, I want to read the file starting from the second line to the end of the file. How can I achieve this?

share|improve this question

6 Answers 6

tail -n +2 file.csv

From the man page:

-n, --lines=N
     output the last N lines, instead of the last 10
...

If the first character of N (the number of bytes or lines)  is  a  '+',
print  beginning with the Nth item from the start of each file, other-
wise, print the last N items in the file.

In English this means that:

tail -n 100 prints the last 100 lines

tail -n +100 prints all lines starting from line 100

share|improve this answer

There are many solutions to this. One of my favorite is:

(head -2 > /dev/null; whatever_you_want_to_do) < file.txt

You can also use tail to skip the lines you want:

tail -n +2 file.txt | whatever_you_want_to_do
share|improve this answer
    
head -n2 >/dev/null is a bad usage, cause depending on how STDIN is opened (block buffers): On my system, the command seq 1 10 | ( head -n2 >/dev/null ; cat ) dont give any output, while seq 1 10 >file && ( head -n2 >/dev/null ; cat ) <file print lines 3 to 10. –  F. Hauri Jan 1 '13 at 12:46

Simple solution with sed:

sed -n '2,$p' <thefile

where 2 is the number of line you wish to read from.

share|improve this answer
1  
... or sed -e '1d' <thefile where 1 is line to delete or if more: sed -e '1,4d' <thefile for skipping /deleting first 4 lines. –  F. Hauri Jan 1 '13 at 12:52
    
Given the question anyway, tail is better. I didn't even think of it at this moment, heh. –  fge Jan 1 '13 at 13:48
    
As bash is very quick, while rest of script is in bash anyway, I prefer bash only solutions. But sed is one of the lighter and quicker solution. Not for tail, but many time sed -ne //p could be quicker than grep. –  F. Hauri Jan 1 '13 at 17:06

Or else (pure bash)...

{ for ((i=1;i--;));do read;done;while read line;do echo $line;done } < file.csv

Better written:

linesToSkip=1
{
    for ((i=$linesToSkip;i--;)) ;do
        read
        done
    while read line ;do
        echo $line
        done
} < file.csv

This work even if linesToSkip == 0 or linesToSkip > file.csv's number of lines

Edit:

Changed () for {} as gniourf_gniourf enjoin me to consider: First syntax generate a sub-shell, whille {} don't.

of course, for skipping only one line (as original question's title), the loop for (i=1;i--;));do read;done could be simply replaced by read:

{ read;while read line;do echo $line;done } < file.csv
share|improve this answer

Depending on what you want to do with your lines: if you want to store each selected line in an array, the best choice is definitely the builtin mapfile:

numberoflinestoskip=1
mapfile -s $numberoflinestoskip -t linesarray < file

will store each line of file file, starting from line 2, in the array linesarray.

help mapfile for more info.

If you don't want to store each line in an array, well, there are other very good answers.

As F. Hauri suggests in a comment, this is only applicable if you need to store the whole file in memory.

Otherwise, you best bet is:

{
    read; # Just a scratch read to get rid (pun!) of the first line
    while read line; do
        echo "$line"
    done
} < file.csv

Notice: there's no subshell involved/needed.

share|improve this answer
    
I'm not sure that using mapfile is a must! While this implie to read the whole file into memory and is not simplier even if lines have to be read as arrays: while read -a lines;do ... ;done will be simplier than having to split each arrays member from mapfile to new arrrays... –  F. Hauri Jan 1 '13 at 12:56

I would just get a variable.

#!/bin/bash

i=0
while read line
do
    if [ $i != 0 ]; then
      echo -e $line
    fi
    i=$i+1
done < "file.csv"

UPDATE Above will check for the $i variable on every line of csv. So if you have got very large csv file of millions of line it will eat significant amount of CPU cycles, no good for Mother nature.

Following one liner can be used to delete the very first line of CSV file using sed and then output the remaining file to while loop.

sed 1d file.csv | while read d; do echo $d; done
share|improve this answer
    
Hem.. i=0;i=$i+1;echo $i -> "0+1" This work, but only for skipping exactly 1 line -> wrong. –  F. Hauri Jan 1 '13 at 12:50
    
@F.Hauri isn't that what is required here? Definitely OP is trying to read CSV file and want to skip very first header line. –  traditional Jan 1 '13 at 12:58
    
If so, this will be better written as (without pre-setting any variable): while read line;do if [ -z "$firstLine" ];then firstLine="seen";else echo "$line";fi;done. Using of i=0 and $i+1 things not clear. –  F. Hauri Jan 1 '13 at 13:05
    
This adds an unneeded test for each line. It's not exactly optimal. –  gniourf_gniourf Jan 1 '13 at 13:25
    
@gniourf_gniourf. I second that. Updated answer with more optimal solution. :) –  traditional Jan 1 '13 at 13:38

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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