JRM
For many sets of consecutive integers from 1 through N (1 <= N <= 39), one can partition the set into two sets whose sums are identical.
For example, if N=3, one can partition the set {1, 2, 3} in one way so that the sums of both subsets are identical:
- {3} and {1,2}
This counts as a single partitioning (i.e., reversing the order counts as the same partitioning and thus does not increase the count of partitions).
If N=7, there are four ways to partition the set {1, 2, 3, ... 7} so that each partition has the same sum:
- {1,6,7} and {2,3,4,5}
- {2,5,7} and {1,3,4,6}
- {3,4,7} and {1,2,5,6}
- {1,2,4,7} and {3,5,6}
Given N, your program should print the number of ways a set containing the integers from 1 through N can be partitioned into two sets whose sums are identical. Print 0 if there are no such ways.
Your program must calculate the answer, not look it up from a table.
PROGRAM NAME: subset
INPUT FORMAT
The input file contains a single line with a single integer representing N, as above.
SAMPLE INPUT (file subset.in)
7
OUTPUT FORMAT
The output file contains a single line with a single integer that tells how many same-sum partitions can be made from the set {1, 2, ..., N}. The output file should contain 0 if there are no ways to make a same-sum partition.
SAMPLE OUTPUT (file subset.out)
4
{ ID: makeeca1 PROG: subset LANG: PASCAL } program subset; var n,i,j,v:longint; f:array[0..39,0..400]of longint; begin assign(input,'subset.in');reset(input); assign(output,'subset.out');rewrite(output); readln(n); close(input); v:=n*(n+1)>>1; if v and 1=1 then begin writeln(0); close(output);halt;end; v:=v>>1; f[1,1]:=1;f[1,0]:=1; for i:=2 to n do for j:=0 to v do if j-i>=0 then f[i,j]:=f[i-1,j]+f[i-1,j-i] else f[i,j]:=f[i-1,j];//Êý×Ö»®·Ö2 writeln(f[n,v]>>1); close(output); end.