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I have 300 pdb fies with 2 chains. I want to calculate the distance between the first atom of first chain to all atoms of second chain.Then,second atom of first chain to all atoms of second chain. This has to be repeated for 300 files. I need to print the atom pairs only if the distance is >= 5 and save the outputs to another folder with input file names. The formula for finding distance is sqrt((x1-x2)^2+(y1-y2)^2+(z1-z2)^2). $5 is the chain ID and $12 is the atom name. $7, $8, $9 are the x,y,z coordinates. Your valuable suggestions would be appreciated!!

ATOM      1  N   MET A   1     -16.220  53.312  36.564  1.00 32.19           N  
ATOM      2  CA  MET A   1     -15.722  52.290  37.522  1.00 28.47           C
ATOM      3  C   MET A   1     -14.451  51.635  37.011  1.00 26.82           C 
ATOM   2542  CG  ASN B  17      -1.077   9.776  13.155  1.00 18.23           C  
ATOM   2543  OD1 ASN B  17      -0.563   9.098  12.250  1.00 18.58           O 
ATOM   2544  ND2 ASN B  17      -0.632   9.746  14.418  1.00 14.82           N

Desired output (distance values are incorrect)

N-C   8.90
N-O   10.3
N-N   7.62
C-C   12.45
C-O   9.0
C-N   9.89 
C-C   11.45
C-O   19.0
C-N   10.89
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closed as not a real question by John3136, Vijay, Eric, François Wahl, DocMax Dec 12 '12 at 0:10

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
What have you tried that didn't work? –  Burhan Khalid Dec 10 '12 at 5:00
    
possible duplicate of Calculating distances with awk –  Vijay Dec 10 '12 at 9:34
    
wild guess is you are changing the user and writing the same question again. –  Vijay Dec 10 '12 at 9:35

3 Answers 3

up vote 1 down vote accepted

Here's one way using GNU awk. Run like:

awk -f script.awk file{,}

Contents of script.awk

NR==1 {
    n = $5
}

FNR==NR && $5 != n {
    a[c++]=$0
}

FNR!=NR && $5 == n {
    for (i=0;i<=c-1;i++) {
        split (a[i],b)
        dist = sqrt (($7-b[7])^2 + ($8-b[8])^2 + ($9-b[9])^2)
        if (dist >= 5) {
            printf "%s-%s\t%.2f\n", $NF, b[NF], dist
        }
    }
}

Tab separated results:

N-C 51.70
N-O 52.83
N-N 51.30
C-C 51.14
C-O 52.29
C-N 50.71
C-C 50.00
C-O 51.14
C-N 49.56

Alternatively, here's the one-liner:

awk 'NR==1 { n = $5 } FNR==NR && $5 != n { a[c++]=$0 } FNR!=NR && $5 == n { for (i=0;i<=c-1;i++) { split (a[i],b); dist = sqrt (($7-b[7])^2 + ($8-b[8])^2 + ($9-b[9])^2); if (dist >= 5) printf "%s-%s\t%.2f\n", $NF, b[NF], dist } }' file{,}

So to perform this on multiple files in the present working directory, and assuming there's nothing but files of interest in this directory, you can wrap a for loop around the awk statement. Obviously, you'll need to change /path/to/folder/ to your path of choice for it to work correctly:

for i in *; do awk 'NR==1 { n = $5 } FNR==NR && $5 != n { a[c++]=$0 } FNR!=NR && $5 == n { for (i=0;i<=c-1;i++) { split (a[i],b); dist = sqrt (($7-b[7])^2 + ($8-b[8])^2 + ($9-b[9])^2); if (dist >= 5) printf "%s-%s\t%.2f\n", $NF, b[NF], dist > "/path/to/folder/" FILENAME } }' "$i"{,}; done
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Nice explanation!! thanks. –  user1890570 Dec 10 '12 at 6:15

Something like this with your sample data saved as "test":

#! /usr/bin/python3.2

import re

class Atom:
    def __init__ (self, line):
        tokens = re.split (' +', line)
        self.chain = tokens [4]
        self.x = float (tokens [6] )
        self.y = float (tokens [7] )
        self.z = float (tokens [8] )
        self.name = tokens [11]

    def __repr__ (self):
        return self.name

    def distance (self, other):
        return ( (self.x - other.x) ** 2 + (self.y - other.y) ** 2 + (self.z - other.z) ** 2) ** .5

chains = [ [], [] ]

with open ('test', 'r') as pdb:
    for line in pdb.readlines ():
        atom = Atom (line.strip () )
        chains [0 if atom.chain == 'A' else 1].append (atom)

print ('\n'.join ( ['{} - {}\t{}'.format (a, b, a.distance (b) ) for a in chains [0] for b in chains [1] ] ) )

produces something like that:

N - C   51.697920905970676
N - O   52.8317143484858
N - N   51.29744063791097
C - C   51.14359109409506
C - O   52.28783920760161
C - N   50.709908814747436
C - C   50.001484907950484
C - O   51.140786403808846
C - N   49.559022700210704

.

EDIT:

I forgot about your >= 5.0 condition: just replace the last line with:

print ('\n'.join ( ['{} - {}\t{}'.format (a, b, a.distance (b) ) for a in chains [0] for b in chains [1] if a.distance (b) >= 5.0] ) )
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