recategorized by
504 views
4 votes
4 votes
Let $\text{A, B}$ be two disjoint non-empty sets. Let $\text{M}$ be the universal set and $\text{A} \cup \text{B}$ is a proper subset of $\mathrm{M}$. For any set $\mathrm{S}$, let $\mathrm{S}^{\prime}$ be the set of those elements which are in $\mathrm{M}$, but not in $\mathrm{S}$.
Which of the following sets forms a partition of $\text{M}$?
  1. $\{\mathrm{A}, \mathrm{B}\}$
  2. $\left\{\mathrm{A}, \mathrm{B}_{,} \mathrm{A}^{\prime} \cap \mathrm{B}^{\prime}\right\}$
  3. $\left\{\mathrm{A} \cup \mathrm{B}, \mathrm{A}^{\prime} \cap \mathrm{B}^{\prime}\right\}$
  4. $\left\{\mathrm{A} \cap \mathrm{B}, \mathrm{A}-\mathrm{B}, \mathrm{B}-\mathrm{A}, \mathrm{A}^{\prime} \cap \mathrm{B}^{\prime}\right\}$
recategorized by

1 Answer

3 votes
3 votes

$\text{A} \cap \text{B}$ is empty set, and empty set is never a part of any partition.
Partition of a set $\text{S}$ is a collection/set of non-empty disjoint subsets of $\mathrm{S}$ whose union is $\mathrm{S}$.

Detailed Video Solution:

https://youtu.be/tqjuxfutFHg?t=2277

PS:

If the Set $S$ itself is Empty then Set $S$ has Exactly One Partition, that is $\{  \} \,\, i.e. \phi$

https://en.wikipedia.org/wiki/Partition_of_a_set#:~:text=is%20finite.-,Examples,-%5Bedit%5D

edited by
Answer:

Related questions