Metamath Proof Explorer

Theorem sqrtmsqi

Description: Square root of square. (Contributed by NM, 2-Aug-1999)

		Ref	Expression
	Hypothesis	sqrtthi.1	$⊢ A \in ℝ$
	Assertion	sqrtmsqi	$⊢ 0 \leq A \to \sqrt{A A} = A$

Step	Hyp	Ref	Expression
1		sqrtthi.1	$⊢ A \in ℝ$
2		sqrtmsq	$⊢ (A \in ℝ \land 0 \leq A) \to \sqrt{A A} = A$
3	1 2	mpan	$⊢ 0 \leq A \to \sqrt{A A} = A$