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I've a map map<set,vector> m1. It has values as follows:

< <1>,<2,4> >
< <2>,<6,2> >
< <3>,<3,4> >
< <4>,<6,1> >
< <5>,<1,1> >

Now I have to find the maximum values in each column of the vector and I do that easily by iterating all the rows and I store it in a vector say v1 as <6,4>.

Now the problem is I want to find all the pairs that constitute to this value. Think of it like what are all the possible combination that can produce <6,4> in the map. i.e. my result should also be a map that looks something like this :

< <1,2>,<6,4> >
< <2,3>,<6,4> >
< <1,4>,<6,4> >
< <3,4>,<6,4> >

EDIT:

To explain more, let the set in the map act as an id of the corresponding vector. Now, what are all the vectors in that map "combined" can produce a <6,4> ? Note that the aggregate function here is the max. i.e given to vectors <2,4> and <6,2>, the max between them is <6,4> so id's (1 and 2) and (2 and 3) and so on can give me <6,4>.

What I was trying to do is iterate through every column of the vector in m1 and store the corresponding set values whenever I find a 6, in this example < <2> <6,2> > and < <4>,<6,1> > and do the same for the second column. Now I do not know how to integrate it to get my result.

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I use the sets as just ID's and since there is a value 4 in id 1 and 6 in id 2. I want to show that id's 1,2 can produce the max value in v1. –  Sunil Mar 11 '11 at 2:49
    
I just read this four times, very slowly. I then looked at both answers which exist right now. I still don't understand the problem. In < <1>, <2,4> >, the <1> part is your std::set with one element, and the <2,4> part is your std::vector with two elements? What do you mean with maximum values in each column of the vector - a vector is one dimensional, why the row/column wording? –  Frerich Raabe Mar 11 '11 at 16:01
    
Given a vector v1 having <6,4> I want to find all the values in the map<set,vectors> that has a 6 in the first element and 4 in the second element of the vector in the map. Think of it like a 8 queens problem. First I find the value in the map that has a 6 and then I search the values second element that has a 4 and give as output. Once I've no more 4's I cbacktrack and find next 6 and do the same and so on.. –  Sunil Mar 11 '11 at 16:27
    
@Frerich : Could you get my idea ? –  Sunil Mar 11 '11 at 16:43
    
@Sunil: I thought I understood what you meant but then I saw that xjdrew implemented the exact same algorithm you described - but you didn't accept this. So I must be missing something. For each vector in the given map, check whether the vector starts with v1 (that is, first element is 6, second is 4). If so, memorize that map element by storing an iterator somewhere. –  Frerich Raabe Mar 12 '11 at 23:10

2 Answers 2

#define SI map<set,vector>::iterator

vector<SI> ret;
for(SI it=m1.begin();it!=m1.end();it++){
    if(equal(v1.begin(),v1.end(),it->second.begin()){
        ret.push_back(it);
    }
}

use std::equal to compare two vector.

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This doesn't give my answer. This just compares two vectors. This just finds if there is a vector with value <6,4> but that's not what I want. –  Sunil Mar 11 '11 at 3:03
    
you can modify ret value type to map<set,vector> and changes ret.push_back(it) to ret[*it] = it->second. –  xjdrew Mar 11 '11 at 3:07
    
Can you please elaborate a little bit? Thanks –  Sunil Mar 11 '11 at 6:27
1  
Please, replace that ugly #define with a typedef. –  Matteo Italia Mar 11 '11 at 15:59
#define SI map<set,vector>::iterator

mx = find_max();
vector<set> ret;
for(SI it=m1.begin();it!=m1.end();it++){
  for(SI it2=it;it2=m1.end();it++){
     if(it==it2)continue;//nasty
     if(find_max2(it,it2)==mx)
        ret.push_back(it->first,it2->first);
  }
}

I don't know if this have compilation errors, but you can get the point.

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