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 have file as shown below .I have to find the maximum value for each timestamp. So I have to find the max(2434, 2681, 2946, 1626) , max(3217, 4764, 4501, 3372) and so on ... (since these numbers have a common timestamp)

Timestamp  value

1280449531 2434
1280449531 2681
1280449531 2946
1280449531 1626
1280449532 3217
1280449532 4764
1280449532 4501
1280449532 3372
1280449533 4129
1280449533 6937
1280449533 6423
1280449533 4818
1280449534 4850
1280449534 8980
1280449534 8078
1280449534 6788
1280449535 5587
1280449535 10879
1280449535 9920
1280449535 8146
1280449536 6324
1280449536 12860
1280449536 11612
1280449536 9867

I wrote this code but getting errors. Can somebody correct me ? Thanks in advance

#!/bin/bash
awk '{ if [ temp -ne $1 ] 
       then temp = $1; big[$1] = $2
       fi
       elif [temp -eq $1] then if [$2 gt $big[$1] ] big[$1] = $2 ; fi 
       fi

     }' plots.dat   
share|improve this question

2 Answers 2

up vote 1 down vote accepted

You're mixing AWK and Bash syntax and with errors in each.

Here's a pure Bash solution:

#!/bin/bash
while read -r timestamp value
do
    if (( value > ${array[timestamp]} + 0 ))
    then
        array[timestamp]=$value
    fi
done < plots.dat
for i in ${!array[@]}
do
    echo "$i ${array[i]}"
done
share|improve this answer
$ awk '$2>values[$1]{values[$1]=$2}END{for(i in values)print values[i],i } ' file
2946 1280449531
4764 1280449532
6937 1280449533
8980 1280449534
10879 1280449535
12860 1280449536
share|improve this answer
    
Thanks a lot @ghostdog ! –  Sharat Chandra Jul 31 '10 at 2:43
    
@Sharat: if this answers your question properly, please accept it by clicking on the checkmark under the number of votes. –  David Z Jul 31 '10 at 3:22

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.