Properties

Label 6000.co.2.a1.a1
Order $ 2^{3} \cdot 3 \cdot 5^{3} $
Index $ 2 $
Normal Yes

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Subgroup ($H$) information

Description:$C_5\times D_5\times A_5$
Order: \(3000\)\(\medspace = 2^{3} \cdot 3 \cdot 5^{3} \)
Index: \(2\)
Exponent: \(30\)\(\medspace = 2 \cdot 3 \cdot 5 \)
Generators: $\langle(1,4,5,2,3), (2,5)(3,4)(6,9,8,10,7)(11,12)(13,14), (6,8,7,9,10), (1,2)(4,5), (1,3,2,5,4)(12,14,15)\rangle$ Copy content Toggle raw display
Derived length: $2$

The subgroup is characteristic (hence normal), maximal, nonabelian, an A-group, and nonsolvable.

Ambient group ($G$) information

Description: $A_5\times C_5:F_5$
Order: \(6000\)\(\medspace = 2^{4} \cdot 3 \cdot 5^{3} \)
Exponent: \(60\)\(\medspace = 2^{2} \cdot 3 \cdot 5 \)
Derived length:$2$

The ambient group is nonabelian, an A-group, and nonsolvable.

Quotient group ($Q$) structure

Description: $C_2$
Order: \(2\)
Exponent: \(2\)
Automorphism Group: $C_1$, of order $1$
Outer Automorphisms: $C_1$, of order $1$
Derived length: $1$

The quotient is cyclic (hence abelian, nilpotent, solvable, supersolvable, monomial, elementary, hyperelementary, metacyclic, metabelian, a Z-group, and an A-group), a $p$-group, simple, and rational.

Automorphism information

Since the subgroup $H$ is characteristic, the automorphism group $\operatorname{Aut}(G)$ of the ambient group acts on $H$, yielding a homomorphism $\operatorname{res} : \operatorname{Aut}(G) \to \operatorname{Aut}(H)$. The image of $\operatorname{res}$ on the inner automorphism group $\operatorname{Inn}(G)$ is the Weyl group $W = G / Z_G(H)$.

$\operatorname{Aut}(G)$$S_5\times F_5^2$, of order \(48000\)\(\medspace = 2^{7} \cdot 3 \cdot 5^{3} \)
$\operatorname{Aut}(H)$ $C_4\times F_5\times S_5$, of order \(9600\)\(\medspace = 2^{7} \cdot 3 \cdot 5^{2} \)
$W$$F_5\times A_5$, of order \(1200\)\(\medspace = 2^{4} \cdot 3 \cdot 5^{2} \)

Related subgroups

Centralizer:$C_5$
Normalizer:$A_5\times C_5:F_5$
Minimal over-subgroups:$A_5\times C_5:F_5$
Maximal under-subgroups:$C_5^2\times A_5$$D_5\times A_5$$C_{10}\times A_5$$C_{10}^2:C_6$$C_5\times D_5^2$$C_{15}:D_{10}$

Other information

Möbius function$-1$
Projective image$A_5\times C_5:F_5$