Theorems · Theorem · number theory
QuadraticForm.tensorAssoc_toLinearEquiv
∀ {R : Type uR} {M₁ : Type uM₁} {M₂ : Type uM₂} {M₃ : Type uM₃} [inst : CommRing R] [inst_1 : AddCommGroup M₁]
[inst_2 : AddCommGroup M₂] [inst_3 : AddCommGroup M₃] [inst_4 : Module R M₁] [inst_5 : Module R M₂]
[inst_6 : Module R M₃] [inst_7 : Invertible 2] (Q₁ : QuadraticForm R M₁) (Q₂ : QuadraticForm R M₂)
(Q₃ : QuadraticForm R M₃), (Q₁.tensorAssoc Q₂ Q₃).toLinearEquiv = TensorProduct.assoc R M₁ M₂ M₃- Cited by
- 0 results in Mathlib
- Foundations
- Depth 86 from the axioms · uses propext, Classical.choice, Quot.sound
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Cites12
Mathlib declarations this one mentions in its statement or cites explicitly in its proof. Plumbing is filtered out.
- Modulestatement and proof · cited by 20,661
- RingHom.idstatement · cited by 18,349
- CommRingstatement and proof · cited by 17,173
- AddCommGroupstatement and proof · cited by 12,871
- LinearEquivstatement · cited by 3,317
- TensorProductstatement · cited by 2,545
- Invertiblestatement and proof · cited by 549
- QuadraticFormstatement and proof · cited by 507
- TensorProduct.assocstatement · cited by 85
- QuadraticForm.tmulstatement · cited by 33
- QuadraticMap.IsometryEquiv.toLinearEquivstatement and proof · cited by 24
- QuadraticForm.tensorAssocstatement and proof · cited by 5
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