Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I wrote some mail merge code the other day and although it works I'm a turned off by the code. I'd like to see what it would look like in other languages.

So for the input the routine takes a list of contacts

Jim,Smith,2681 Eagle Peak,,Bellevue,Washington,United States,98004
Erica,Johnson,2681 Eagle Peak,,Bellevue,Washington,United States,98004
Abraham,Johnson,2681 Eagle Peak,,Bellevue,Washington,United States,98004
Marge,Simpson,6388 Lake City Way,,Burnaby,British Columbia,Canada,V5A 3A6
Larry,Lyon,52560 Free Street,,Toronto,Ontario,Canada,M4B 1V7
Ted,Simpson,6388 Lake City Way,,Burnaby,British Columbia,Canada,V5A 3A6
Raoul,Simpson,6388 Lake City Way,,Burnaby,British Columbia,Canada,V5A 3A6

It will then merge lines with the same address and surname into one record. Assume the rows are unsorted). The code should also be flexible enough that fields can be supplied in any order (so it will need to take field indexes as parameters). For a family of two it concatenates both first name fields. For a family of three or more the first name is set to "the" and the lastname is set to "surname family".

Erica and Abraham,Johnson,2681 Eagle Peak,,Bellevue,Washington,United States,98004
Larry,Lyon,52560 Free Street,,Toronto,Ontario,Canada,M4B 1V7
The,Simpson Family,6388 Lake City Way,,Burnaby,British Columbia,Canada,V5A 3A6
Jim,Smith,2681 Eagle Peak,,Bellevue,Washington,United States,98004

My C# implementation of this is:

var source = File.ReadAllLines(@"sample.csv").Select(l => l.Split(','));
var merged = HouseholdMerge(source, 0, 1, new[] {1, 2, 3, 4, 5});

public static IEnumerable<string[]> HouseholdMerge(IEnumerable<string[]> data, int fnIndex, int lnIndex, int[] groupIndexes)
{            
    Func<string[], string> groupby = fields => String.Join("", fields.Where((f, i) => groupIndexes.Contains(i)));

    var groups = data.OrderBy(groupby).GroupBy(groupby);

    foreach (var group in groups)
    {
        string[] result = group.First().ToArray();

        if (group.Count() == 2)
        {
            result[fnIndex] += " and " + group.ElementAt(1)[fnIndex];
        }
        else if (group.Count() > 2)
        {
            result[fnIndex] = "The";
            result[lnIndex] += " Family";
        }

        yield return result;
    }            
}

I don't like how I've had to do the groupby delegate. I'd like if C# had some way to convert a string expression to a delegate. e.g. Func groupby = f => "f[2] + f[3] + f[4] + f[5] + f[1];" I have a feeling something like this can probably be done in Lisp or Python. I look forward to seeing nicer implementation in other languages.

Edit: Where did the community wiki checkbox go? Some mod please fix that.

share|improve this question
1  
But why code-golf this question? Read the code golf guidelines – Zaid Nov 7 '10 at 7:44
    
@Zaid, indeed, would be interesting to see this answered in a few languages without being golfed – John La Rooy Nov 7 '10 at 10:36
    
I'm more interested in seeing it in other languages than having it code golfed but SO can have some over zealous mods that close questions that don't fit a very rigid format so I code-golf was the best way to keep it open. – Jacob Nov 7 '10 at 14:36
    
I think there is a "shortest-code desired" or "most efficient solution desired" tag... something to that effect anyway. – Vivin Paliath Nov 7 '10 at 20:34
1  
Due to the removal of the CW checkbox for questions, it is time to get Code Golf & Programming Puzzles off the ground so that we can move [code-golf] from Stack Overflow. ::gets out pom-poms and starts jumping around in drag:: Rah! Rah! Ree! – dmckee Nov 7 '10 at 21:04
up vote 3 down vote accepted

Ruby — 181 155

Name/surname indexes are in code:a and b. Input data is from ARGF.

a,b=0,1
[*$<].map{|i|i.strip.split ?,}.group_by{|i|i.rotate(a).drop 1}.map{|i,j|k,l,m=j
k[a]+=' and '+l[a]if l
(k[a]='The';k[b]+=' Family')if m
puts k*','}
share|improve this answer
    
Another hard one. Looks like ruby allows conditionals in an assignment "x = a if condition1 b if condition2"? The transpose function is nice. What does the asterisk after it do? – Jacob Nov 7 '10 at 15:47
    
@Jacob, String#* == String#join – Nakilon Nov 7 '10 at 21:03
    
While I was sleeping, the longest solution and wrong solution (without indexes of name/surname) have got +1, and my was still 0. Hehe... Python-Ruby discrimination? ) – Nakilon Nov 7 '10 at 21:14
    
odd, you had +2 when I looked earlier – John La Rooy Nov 7 '10 at 22:00
    
@gnibbler, interesting ) I'm not angry, but it's funny. – Nakilon Nov 7 '10 at 22:14

Python - not golfed

I'm not sure what the order of the rows should be if the indices are not 0 and 1 for the input file

import csv
from collections import defaultdict

class HouseHold(list):
    def __init__(self, fn_idx, ln_idx):
        self.fn_idx = fn_idx
        self.ln_idx = ln_idx

    def append(self, item):
        self.item = item
        list.append(self, item[self.fn_idx])

    def get_value(self):
        fn_idx = self.fn_idx
        ln_idx = self.ln_idx
        item = self.item
        addr = [j for i,j in enumerate(item) if i not in (fn_idx, ln_idx)]
        if len(self) < 3:
            fn, ln = " and ".join(self), item[ln_idx]
        else:
            fn, ln = "The", item[ln_idx]+" Family"
        return [fn, ln] + addr

def source(fname):
    with open(fname) as in_file:
        for item in csv.reader(in_file):
            yield item

def household_merge(src, fn_idx, ln_idx, groupby):
    res = defaultdict(lambda:HouseHold(fn_idx, ln_idx))
    for item in src:
        key = tuple(item[x] for x in groupby)
        res[key].append(item)
    return res.values()

data =  household_merge(source("sample.csv"), 0, 1, [1,2,3,4,5,6,7])
with open("result.csv", "w") as out_file:
    csv.writer(out_file).writerows(item.get_value() for item in data)
share|improve this answer
    
Thanks for the longer version. I like that tuples can be created from a list "tuple(item[x] for x in groupby)". Can you pass those to the sortby and groupby functions that Nick uses in his answer? – Jacob Nov 7 '10 at 15:11
    
@Jacob, yes I could use sorted and groupby with that tuple as the key, but that would make the algorithm O(NlogN). This algorithm is O(N) – John La Rooy Nov 7 '10 at 20:29

Python - 178 chars

import sys
d={}
for x in sys.stdin:F,c,A=x.partition(',');d[A]=d.get(A,[])+[F]
print"".join([" and ".join(v)+c+A,"The"+c+A.replace(c,' Family,',1)][2<len(v)]for A,v in d.items())

Output

Jim,Smith,2681 Eagle Peak,,Bellevue,Washington,United States,98004
The,Simpson Family,6388 Lake City Way,,Burnaby,British Columbia,Canada,V5A 3A6
Larry,Lyon,52560 Free Street,,Toronto,Ontario,Canada,M4B 1V7
Erica and Abraham,Johnson,2681 Eagle Peak,,Bellevue,Washington,United States,98004
share|improve this answer
    
Thanks. That's going to take a while to decode. I can't tell where it determines if there are 1, 2, or 3+ people in the household. – Jacob Nov 7 '10 at 15:28
    
@Jacob, 2<len(v) 1 and 2 people are dealt with by the same code " and ".join(v)+c+A – John La Rooy Nov 7 '10 at 20:50
    
Where are indexes of name/surname fields? – Nakilon Nov 7 '10 at 21:11

Python 2.6.6 - 287 Characters

This assumes you can hard code a filename (named i). If you want to take input from command line, this goes up ~16 chars.

from itertools import*
for z,g in groupby(sorted([l.split(',')for l in open('i').readlines()],key=lambda x:x[1:]), lambda x:x[2:]):
 l=list(g);r=len(l);k=','.join(z);o=l[0]
 if r>2:print'The,'+o[1],"Family,"+k,
 elif r>1:print o[0],"and",l[1][0]+","+o[1]+","+k,
 else:print','.join(o),

Output

Erica and Abraham,Johnson,2681 Eagle Peak,,Bellevue,Washington,United States,98004
Larry,Lyon,52560 Free Street,,Toronto,Ontario,Canada,M4B 1V7
The,Simpson Family,6388 Lake City Way,,Burnaby,British Columbia,Canada,V5A 3A6
Jim,Smith,2681 Eagle Peak,,Bellevue,Washington,United States,98004

I'm sure this could be improved upon, but it is getting late.

share|improve this answer
    
you can import sys and iterate over sys.stdin to take input from stdin – John La Rooy Nov 7 '10 at 7:30
    
@gnibbler: Yep. That is the ~16 characters I'm talking about. :-) There aren't any requirements (and the OP's code assumes sample.csv) so I will leave it until he specifies. – Nick Presta Nov 7 '10 at 7:31
    
Nice, that's fairly readable. You've hardcoded indexes but I take it you could pass in a list something like this: lambda x:x[1,2,3,4,5] ? – Jacob Nov 7 '10 at 15:04
    
@Jacob: Yeah. Both lambda x: can be changed to sort and group by different things. – Nick Presta Nov 7 '10 at 16:59
    
you should sort by key=lambda x:x[1:] Otherwise people with the same last name but different addresses will break the grouping – John La Rooy Nov 7 '10 at 20:27

Haskell - 341 321

(Changes as per comments).

Unfortunately Haskell has no standard split function which makes this rather long.

Input to stdin, output on stdout.

import List
import Data.Ord
main=interact$unlines.e.lines
s[]=[]
s(',':x)=s x
s l@(x:y)=let(h,i)=break(==k)l in h:(s i)
t[]=[]
t x=tail x
h=head
m=map
k=','
e l=m(t.(>>=(k:)))$(m c$groupBy g$sortBy(comparing t)$m s l)
c(x:[])=x
c(x:y:[])=(h x++" and "++h y):t x
c x="The":((h$t$h x)++" Family"):(t$t$h x)
g a b=t a==t b
share|improve this answer
    
Use List instaed of Data.List. Use t.concat.(>>=(',':)) instead of concat.intersperse "," if possible and declare k=',' to save space. If not possible, at least remove the space after intersperse. – FUZxxl Nov 8 '10 at 6:14
    
And, use an @-Pattern in s(x:y)=let(h,i)=break(==',')(x:y)in h:(s i) like s l@(x:y)=h:(s i)where(h,i)=break(==',')l – FUZxxl Nov 8 '10 at 6:20
    
Hm... Don't know, whether it's against the rules, but you may also consider turning some of the ops into postfix functions (haskell.org/ghc/docs/6.12.2/html/users_guide/…), it may save some typing for s, if you use pattern guards instead of simple patterns. I have to test this at home. – FUZxxl Nov 8 '10 at 6:25
    
BTW, I really like this! – FUZxxl Nov 8 '10 at 6:41
1  
Cheers @FUZxxl - I'll make the changes you suggested tonight, and see how small we can get it. – stusmith Nov 8 '10 at 9:35

Lua, 434 bytes

x,y=1,2 s,p,r,a=string.gsub,pairs,io.read,{}for j,b,c,d,e,f,g,h,i in r('*a'):gmatch('('..('([^,]*),'):rep(7)..'([^,]*))\n')
do k=s(s(s(j,b,''),c,''),'[,%s]','')for l,m in p(a)do if not m.f and (m[y]:match(c) and m[9]==k) then z=1
if m.d then m[x]="The"m[y]=m[y]..' family'm.f=1 else m[x]=m[x].." and "..b m.d=1 end end end if not z then
a[#a+1]={b,c,d,e,f,g,h,i,k} end z=nil end for k,v in p(a)do v[9]=nil print(table.concat(v,','))end
share|improve this answer

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.