Metamath Proof Explorer

Theorem ex-abs

Description: Example for df-abs . (Contributed by AV, 4-Sep-2021)

Ref Expression
Assertion ex-abs 
|- ( abs ` -u 2 ) = 2

Proof

Step Hyp Ref Expression
1 2cn 
 |-  2 e. CC
2 1 absnegi 
 |-  ( abs ` -u 2 ) = ( abs ` 2 )
3 2re 
 |-  2 e. RR
4 0le2 
 |-  0 <_ 2
5 absid 
 |-  ( ( 2 e. RR /\ 0 <_ 2 ) -> ( abs ` 2 ) = 2 )
6 3 4 5 mp2an 
 |-  ( abs ` 2 ) = 2
7 2 6 eqtri 
 |-  ( abs ` -u 2 ) = 2