Consider theoxidation numbers ofoxygen (-2) and hydrogen(+1) in (a).

Hence the oxidation state of phosphorous is +5 as indicated below:

\(\begin{aligned}{\underline{\phantom{xx}}}3 \times \left( { + 1} \right) + x + 4 \times \left( { - 2} \right) = 0\\x =  + 5\end{aligned}\)

Consider the oxidation numbers of oxygen (-2) and hydrogen (+1) in (b).

Therefore, the oxidation state of aluminium is +3 as shown below:

\(\begin{aligned}{\underline{\phantom{xx}}}x + 3 \times \left( { - 2} \right) + 3 \times \left( { + 1} \right) = 0\\x =  + 3\end{aligned}\)

Consider theoxidation number of oxygen (-2) in (c).

Therefore,theoxidation state of selenium is +4 as shown below:

\(\begin{aligned}{\underline{\phantom{xx}}}x + 2 \times \left( { - 2} \right) = 0\\x =  + 4\end{aligned}\)

Consider theoxidation numbers of oxygen (-2) and potassium (+1) in (d).

Therefore,theoxidation state of nitrogen is +3 as given below:

\(\begin{aligned}{\underline{\phantom{xx}}}1 \times 1 + x + 2 \times \left( { - 2} \right) = 0\\x =  + 3\end{aligned}\)

Consider theoxidation number of sulfur (-2) in (e).

Therefore,theoxidation state of indium is +3 as given below:

\(\begin{aligned}{\underline{\phantom{xx}}}2x + 3 \times \left( { - 2} \right) = 0\\x =  + 3\end{aligned}\)

Consider theoxidation number of oxygen(-2) in (f).

Therefore,theoxidation state of phosphorous is +3 as given below:

\(\begin{aligned}{\underline{\phantom{xx}}}4x + 6 \times \left( { - 2} \right) = 0\\x =  + 3\end{aligned}\)