Lol! reading this comment in 2020, it feels funny, how much CF has grown even a DIV3 contest has more than 12000 official participants

на максимальном тесте)))

200

1 2

1 3

1 4

...

199 200

simple :)

1. u have not used points  used[1..200] all set to 0//not used 

2. read n - amount of sets,set must out sets o=n;

3 while readind n*(n-1)/2 pairs of sets do this:{ line number is j

set setA=empty; setB= empty;

  read k-amount of points 

   for all k points p in this line j do {

    if used[p]<0 continue;

    if   used[p] ==0 {is notused mark used[p]=j//it means that number p  fist time in j line}

    else if used [p]>0 {it means that in j line we get set   

      with  p points in 2nd time so we can solve what set has p point 

     if (A.empty||used[A.top]==used[p])A.push(p)   else B.push(p)

}//end for k points in j line

if(not empty A){out(A);mark all p in A used[p]*=-1;o--} 

if(not empty B){out(B);mark all p in B used[p]*=-1;o--}

}//end for j lines of n*(n-1)/2 lines of pairs sets

test if (o>0){//o==2

cose we have last readed line like k a1 a2 .... ak

we make hand made out like

line1: 2

line2: 1 a1

line3: k-1 a2 ... ak

}

thats all