Metamath Proof Explorer

Theorem s5cld

Description: A length 5 string is a word. (Contributed by Mario Carneiro, 27-Feb-2016)

Ref Expression
Hypotheses s2cld.1 
|- ( ph -> A e. X )
s2cld.2 
|- ( ph -> B e. X )
s3cld.3 
|- ( ph -> C e. X )
s4cld.4 
|- ( ph -> D e. X )
s5cld.5 
|- ( ph -> E e. X )
Assertion s5cld 
|- ( ph -> <" A B C D E "> e. Word X )

Proof

Step Hyp Ref Expression
1 s2cld.1 
 |-  ( ph -> A e. X )
2 s2cld.2 
 |-  ( ph -> B e. X )
3 s3cld.3 
 |-  ( ph -> C e. X )
4 s4cld.4 
 |-  ( ph -> D e. X )
5 s5cld.5 
 |-  ( ph -> E e. X )
6 df-s5 
 |-  <" A B C D E "> = ( <" A B C D "> ++ <" E "> )
7 1 2 3 4 s4cld 
 |-  ( ph -> <" A B C D "> e. Word X )
8 6 7 5 cats1cld 
 |-  ( ph -> <" A B C D E "> e. Word X )