Answer :
(i) The half oxidation-reduction reactions are:
Oxidation reaction :

Reduction reaction :

(ii)
is oxidized species.
(iii)
is reducing species.
Explanation :
Redox reaction or Oxidation-reduction reaction : It is defined as the reaction in which the oxidation and reduction reaction takes place simultaneously.
Oxidation reaction : It is defined as the reaction in which a substance looses its electrons. In this, oxidation state of an element increases. Or we can say that in oxidation, the loss of electrons takes place.
Reduction reaction : It is defined as the reaction in which a substance gains electrons. In this, oxidation state of an element decreases. Or we can say that in reduction, the gain of electrons takes place.
Reducing agent : It is defined as the agent which helps the other substance to reduce and itself gets oxidized. Thus, it will undergo oxidation reaction.
Oxidizing agent : It is defined as the agent which helps the other substance to oxidize and itself gets reduced. Thus, it will undergo reduction reaction.
The balanced redox reaction is :

The half oxidation-reduction reactions are:
Oxidation reaction :

Reduction reaction :

From this we conclude that the
is the reducing agent that loses an electron to another chemical species in a redox chemical reaction and itself gets oxidized and
is the oxidizing agent that gain an electron to another chemical species in a redox chemical reaction and itself gets reduced.
In this reaction, 'Sr' is oxidized from oxidation (0) to (+2) and 'O' is reduced from oxidation state (0) to (-2). Hence, 'Sr' act as a reducing agent and 'O' act as a oxidizing agent.
Thus,
is reduced species and
is oxidized species.