#P1516C. Baby Ehab Partitions Again
Baby Ehab Partitions Again
No submission language available for this problem.
Description
Baby Ehab was toying around with arrays. He has an array $a$ of length $n$. He defines an array to be good if there's no way to partition it into $2$ subsequences such that the sum of the elements in the first is equal to the sum of the elements in the second. Now he wants to remove the minimum number of elements in $a$ so that it becomes a good array. Can you help him?
A sequence $b$ is a subsequence of an array $a$ if $b$ can be obtained from $a$ by deleting some (possibly zero or all) elements. A partitioning of an array is a way to divide it into $2$ subsequences such that every element belongs to exactly one subsequence, so you must use all the elements, and you can't share any elements.
The first line contains an integer $n$ ($2 \le n \le 100$) — the length of the array $a$.
The second line contains $n$ integers $a_1$, $a_2$, $\ldots$, $a_{n}$ ($1 \le a_i \le 2000$) — the elements of the array $a$.
The first line should contain the minimum number of elements you need to remove.
The second line should contain the indices of the elements you're removing, separated by spaces.
We can show that an answer always exists. If there are multiple solutions, you can print any.
Input
The first line contains an integer $n$ ($2 \le n \le 100$) — the length of the array $a$.
The second line contains $n$ integers $a_1$, $a_2$, $\ldots$, $a_{n}$ ($1 \le a_i \le 2000$) — the elements of the array $a$.
Output
The first line should contain the minimum number of elements you need to remove.
The second line should contain the indices of the elements you're removing, separated by spaces.
We can show that an answer always exists. If there are multiple solutions, you can print any.
Samples
4
6 3 9 12
1
2
2
1 2
0
Note
In the first example, you can partition the array into $[6,9]$ and $[3,12]$, so you must remove at least $1$ element. Removing $3$ is sufficient.
In the second example, the array is already good, so you don't need to remove any elements.