Contents 1. Introduction 2 2. Preliminaries 4 2.1. Some results on ...

263i.e.f eP (J) P (I) h A 0exef ′eyP (J ′ h)P (I′ )′ A ′ 0( )Since A = Coker ˜f and by the commutative of the diagram, we deduce that thereexists a unique morphism a : A → A ′ in A such that the diagramf eP (J) P (I) h A0exP (J ′ )ef ′eyP (I′ )ah ′ A ′ 0is commutative. By applying the exact functor Hom A (P, −) thus we getHom A(P, P(J) )A(P,e Hom f) ( Hom )A P, P(I)Hom A (P,h)Hom A (P, A)0Hom A (P,ex)Hom A (P,ey)zHom A (P,a)Hom A(P, P(J ′ ) ) Hom A(P,e f ′) Hom A(P, P(I ′ ) ) Hom A (P,h ′ ) HomA (P, A ′ ) 0which saysz ◦ Hom A (P, h) = Hom A (P, h ′ ) ◦ Hom A (P, ỹ)= Hom A (P, a) ◦ Hom A (P, h)and since Hom A (P, h) is epi we deduce thatz = Hom A (P, a) .This proves that Hom A (P, −) is full. Since P is a generator, Hom A (P, −) is faithful.Then we only need to prove that Hom A (P, −) is surjective on objects. Let M ∈Mod-B. Then we have the following exact sequence in Mod-BB (X) → B (M) → M → 0.Since B = Hom A (P, P ) we can rewrite is asHom A (P, P ) (X) → Hom A (P, P ) (M) → M → 0.Since P is finite Hom A (P, P ) (X) ≃ Hom A(P, P(X) ) andHom A (P, P ) (M) ≃ Hom A(P, P(M) ) and then we have an exact sequence in Mod-B(276) Hom A(P, P(X) ) f−→ Hom A(P, P(M) ) → Q → 0where Q = Coker (f). Then Q ≃ M. Since Hom A (P, −) is full (and faithful) wehaveHom A (A, A ′ ) ≃ Hom Mod-B (Hom A (P, A) , Hom A (P, A ′ )) ,