Proof. Let $F = H\times H\times \cdots \times H$ with m terms. Note that $F \unlhd G$ and $s(F) = s(H)^m$ by Lemma 2.2. Also $s(F) \geq s(G)$ by Lemma 2.1 and $|H|^m = |F| \leq |G|$ . Then

$$ \begin{align*} \textit{ds}(H) = \frac{m\log_2 s(H)}{m\log_2 |H|} = \frac{\log_2 s(H)^m}{\log_2 |H|^m} = \frac{\log_2 s(F)}{\log_2 |F|} \geq \frac{\log_2 s(G)}{\log_2 |G|} = \textit{ds}(G).\\[-42pt] \end{align*} $$

Proof. We may assume $G\lesssim H \wr P_1 \wr \cdots \wr P_j$ where each $P_i$ is primitive and deg $(P_i) = m_i$ . By (2.1), $s(H) \geq 24^{\alpha } \cdot |H|^{\beta }$ . Also $|P_1| \leq (24^{1/3})^{m_1 - 1}$ by [Reference Keller5, Corollary 1.5]. By Lemma 2.4,

$$ \begin{align*} s(H\wr P_1) \geq s(H)^{m_1} / |P_1| &\geq \frac{24^{\alpha m_1} \cdot |H|^{\beta m_1}}{24^{(m_1-1)/3}} = 24^{\alpha} \cdot |H|^{\beta \cdot m_1} \cdot (24^{{({1}/{3})} (m_1-1)})^{{3}/{20}} \\ &\geq 24^{\alpha} \cdot |H|^{\beta \cdot m_1} \cdot (24^{{({1}/{3})} (m_1-1)})^{\beta} \geq 24^{\alpha} \cdot |H|^{\beta \cdot m_1} \cdot |P_1|^{\beta}. \end{align*} $$

Thus

$$ \begin{align*}\frac{\log_2 s(H\wr P_1)}{\log_2 |H\wr P_1|} - \frac{\log_2 24^{\alpha}}{\log_2 |H\wr P_1|} \geq \beta.\end{align*} $$

By induction,

$$ \begin{align*}\frac{\log_2 s(H\wr P_1\wr \cdots \wr P_j)}{\log_2 |H\wr P_1\wr \cdots \wr P_j|} - \frac{\log_2 24^{\alpha}}{\log_2 |H\wr P_1\wr \cdots \wr P_j|} \geq \beta,\end{align*} $$

from which $\textit {ds}(G) \geq {\log _2 s(H\wr P_1\wr \cdots \wr P_j)}/{\log _2 |H\wr P_1\wr \cdots \wr P_j|}$ by Lemma 2.1.

Proof. Let G be a primitive permutation group of degree n not containing ${ {\textrm {A}}}_l,\ \mathrm{for} l> 4$ , as a composition factor. If $n \geq 25$ and $n\neq 32$ , then $|G| \leq 2^{0.76n}$ by Lemma 2.6, so $s(G)\geq {2^n}/{|G|} \geq 2^{0.24n}$ and

$$ \begin{align*}\textit{ds}(G) = \frac{\log_2 s(G)}{\log_2 |G|} \geq \frac{\log_2 2^{0.24n}}{\log_2 2^{0.76n}} = \frac{24}{76}> 0.3157 > c_8.\end{align*} $$

If $n=32$ , then $s(G) \geq 361$ by Table 2 of [Reference Yang10]. Also $|G|< 2^{32}$ by Lemma 2.6. So

$$ \begin{align*}\textit{ds}(G) = \frac{\log_2 s(G)}{\log_2 |G|}> \frac{\log_2 361}{32\cdot \log_2 2} > 0.2654 > c_8.\end{align*} $$

If $n < 25$ , we note that $s(G) \geq n + 1$ and $|G| < 3^n$ by Lemma 2.6. For $2\leq n \leq 20$ , direct calculation shows that

$$ \begin{align*} \textit{ds}(G) = \frac{\log_2 s(G)}{\log_2 |G|}> \frac{\log_2 (n+1)}{n\log_2 3} > c_8 \end{align*} $$

for each n. For $n = 21, 22, 23$ and $24$ , we use the upper bounds for $|G|$ in Table 2 of [Reference Yang10]. In all cases, $\textit {ds}(G)> 1.66 > c_8$ .

Proof. By Lemma 2.5, it suffices to show that

$$ \begin{align*}\frac{\log_2 s(H)}{\log_2 |H|}-\frac{\frac{23}{60} \log_2 (24)}{\log_2 |H|}> c_8\end{align*} $$

for all n. Suppose $n\geq 25$ and $n\neq 32$ . Then $|H| \leq 2^{0.76n}$ and $s(H) \geq {2^n}/{|H|} \geq 2^{0.24n}$ by Lemma 2.6. Then

$$ \begin{align*}\frac{\log_2 s(H) -\frac{23}{60} \log_2 24}{\log_2 |H|} \geq \frac{0.24n - \log_2 (24^{{23}/{60}})}{0.76n} = \frac{24}{76} - \frac{\frac{23}{60} \log_2 24}{ 0.76 \cdot 25}> 0.223 > c_8.\end{align*} $$

Suppose $n = 32$ . Then $s(H)\geq 361$ and $|H| \leq 2^{32}$ by Table 2 of [Reference Yang10] and Lemma 2.6 and so

$$ \begin{align*}\frac{\log_2 361 - \frac{23}{60} \log_2 24}{\log_2 2^{32}}> 0.21 > c_8.\end{align*} $$

For $21\leq n \leq 24$ and $n = 14, 15, 16$ and $17$ we refer to Tables 1 and 2 in [Reference Yang10] to find bounds for $s(H)$ and $|P_1|$ . Direct calculation shows that the inequality holds.

For $3\leq n \leq 13$ and $n = 18, 19$ and $20$ , we note that $s(H) \geq n + 1$ . We use the upper bounds for $|P_1|$ from [Reference Yang10] and direct calculation shows that the inequality holds in all cases excluding $M_{12}$ .

We need to consider $n= 2, 3$ and $4$ differently. We note that by Lemma 2.7, G is not primitive and so we may assume that $G\lesssim H\wr P_1 \wr \cdots \wr P_j$ where each $P_i$ is primitive of degree $m_1$ . Let $K = H\wr P_1$ . We show that

(⋆) $$ \begin{align} \frac{\log_2 s(K) }{\log_2 |K| } -\frac{\frac{23}{60} \log_2 24}{\log_2 |K|}> c_8. \end{align} $$

Suppose that $n = 4$ . Then $s(H) \geq 5$ and $s(K) \geq 5^{m_1} / |P_1|$ by Lemma 2.4. Also $|H| \leq 24$ . If $m_1 \geq 25$ and $m_1\neq 32$ , then $|P_1| \leq 2^{0.76 m_1}$ by Lemma 2.6. Then

$$ \begin{align*}\frac{\log_2 ({5^{m_1}}/{2^{0.76m_1})}}{\log_2 (24^{m_1} \cdot 2^{0.76m_1})}-\frac{\frac{23}{60}\log_2 24}{25\cdot \log_2 24\cdot 2^{0.76}}> 0.279 > c_8.\end{align*} $$

If $m_1 = 32$ , then $|P_1| \leq 319979520$ by [Reference Yang10]. So $s(K) \geq 5^{32}/319979520$ . We verify that (⋆) is satisfied.

For $5 \leq m_1 \leq 24$ we use the bounds for $|P_1|$ in [Reference Yang10] and the estimate $s(K) \geq 5^{m_1} / |P_1|$ and direct calculation shows that (⋆) is satisfied in all cases except when $P_1 \cong M_{12}$ . If $P_1\cong M_{12}$ , we calculate $s(S_4\wr M_{12}) = 5825$ by the method outlined above. Since $|M_{12}| = 95040$ , direct calculation shows that (⋆) is satisfied.

For $2\leq m_1 \leq 4$ , we note that $s(K) \geq {s(H) - 1 + m_1 \choose s(H) - 1} = {4 + m_1 \choose 4}$ by Lemma 2.6. If $m_1 = 4$ , then $|P_1| \leq 24$ and $s(K) \geq {8\choose 4} = 70$ . It is easy to see that (⋆) is satisfied. Similarly, direct calculation shows that (⋆) is satisfied when $m_1 = 2$ or $3$ .

If $n = 3$ , then $s(H) \geq 4$ and $s(K) \geq 4^{m_1}/ |P_1|$ by Lemma 2.4. If $m_1 \geq 25$ and $m_1 \neq 32$ , then $|P_1| \leq 2^{0.76m_1}$ by Lemma 2.6 and $|K| = |H|^{m_1}|P_1| \leq 6^{m_1}\cdot 2^{0.76m_1}$ since $|H| \leq 6$ . Thus, we see that

$$ \begin{align*}\frac{\log_2 s(K) }{\log_2 |K| } -\frac{\frac{23}{60} \log_2 24}{\log_2 |K|} \geq \frac{\log_2 ({4^{m_1}}/{2^{0.76m_1}}) }{\log_2 6^{m_1}\cdot2^{0.76m_1}} -\frac{\frac{23}{60} \log_2 24}{\log_2 6^{25}\cdot2^{0.76\cdot25}} = 0.349> c_8.\end{align*} $$

For $m_1 = 32$ and $5 \leq m_1 \leq 24$ with $P_1\not \cong M_{12}$ and $m_1 \neq 8$ , the bounds in [Reference Yang10] and $s(K) \geq 4^{m_1} / |P_1|$ show that (⋆) is satisfied. If $P_1 \cong M_{12}$ , then $s(S_3\wr M_{12}) = 862$ by the method outlined above. Direct calculation shows that (⋆) is satisfied.

For $2\leq m_1 \leq 4$ and $m_1 = 8$ , the bounds $s(K) \geq {s(H) - 1 + m_1\choose s(H) -1 } = {3 + m_1 \choose 3}$ and the bounds for $|P_1|$ in [Reference Yang10] show that (⋆) is satisfied by direct computation.

Suppose that $n = 2$ . Then $|H| = 2$ and $s(H) \geq 3$ . If $m_1 \geq 25$ and $m_1 \neq 32$ , then $|P_1| \leq 2^{0.76m_1}$ . Also $s(H\wr P_1) \geq 3^{m_1}/|P_1|$ . Then

$$ \begin{align*}\frac{\log_2 s(K) }{\log_2 |K| } -\frac{\frac{23}{60} \log_2 24}{\log_2 |K|} \geq \frac{\log_2 ({3^{m_1}}/{2^{0.76m_1}}) }{\log_2 2^{m_1}\cdot2^{0.76m_1}} -\frac{\frac{23}{60} \log_2 24}{\log_2 2^{25}\cdot2^{0.76\cdot25}} = 0.664> c_8.\end{align*} $$

For $m_1 = 32$ and $12 \leq m_1 \leq 24$ and $P_1 \not \cong M_{12}$ , we use the bound $s(K) \geq 3^{m_1} / |P_1|$ and the bounds in [Reference Yang10]. Direct calculation shows that (⋆) is satisfied. If $P_1\cong M_{12}$ , then $s(S_2\wr M_{12}) = 120$ by the method described above. We verify that (⋆) is satisfied.

For $2\leq m_1 \leq 11$ , we use $s(K) \geq {s(H) - 1 + m_1 \choose s(H) -1} = {2 + m_1 \choose 2}$ . Direct calculation shows that (⋆) is satisfied.

Therefore, $\textit {ds}(G)> c_8$ provided H is different from $M_{12}$ .

Proof. Note that $s(M_{12}) = 14$ and $|M_{12}| = 95040$ . Let $L = M_{12} \wr P_1$ , where deg $(P_1) = m_1 \geq 2$ . By Lemma 2.4, $s(L) \geq 14^{m_1}/ |P_1|$ . Also $|L| = 95040^{m_1} \cdot |P_1|$ . By Lemma 2.5, it suffices to show that for all $m_1 \geq 2$ ,

$$ \begin{align*}\star(L) = \frac{\log_2 s(L)}{\log_2 |L|} - \frac{\frac{23}{60} \log_2 24}{\log_2 |L|}> c_8.\end{align*} $$

If $m_1 \geq 25$ and $m_1 \neq 32$ , then $|P_1| \leq 2^{0.76 m_1}$ by Lemma 2.6. Then $s(L) \geq 14^{m_1}/ 2^{0.76m_1}$ and

$$ \begin{align*}\star(L) \geq \frac{ \log_2 ({14}/{2^{0.76}})}{\log_2 (95040\cdot 2^{0.76})} - \frac{\frac{23}{60} \log_2 24}{25\cdot \log_2 (95040\cdot 2^{0.76})}> 0.172 > c_8.\end{align*} $$

If $m_1 = 32$ , then $|P_1| \leq 319979520$ and so $s(L) \geq 14^{32}/ 319979520$ . Thus we see that $\star (L)> 0.164 > c_8$ .

For $5 \leq m_1 \leq 24$ , bounds for $|P_1|$ are obtained from [Reference Yang10] and $\star (L)> c_8$ is verified by direct computation.

For the remaining computations, we use Lemma 2.4 to get a better bound:

$$ \begin{align*}s(L) \geq {s(M_{12})-1+m_1 \choose s(M_{12}) - 1} = {s(M_{12})-1+m_1 \choose 13}.\end{align*} $$

If $m_1 = 4$ , then $|P_1| \leq 24$ and $s(L) \geq {17 \choose 13} = 2380$ , so $\star (L)> 0.133 > c_8$ . If $m_1 = 3$ , then $|P_1| \leq 6$ and $s(L) \geq {16 \choose 13} = 560$ , so $\star (L)> 0.141 > c_8$ . If $m_1 = 2$ , then $|P_1| \leq 2$ and $s(L) \geq {15 \choose 13} = 105$ , so $\star (L)> 0.145 > c_8$ .

Therefore, deg $(P_1) = 12$ and $P_1\cong M_{12}$ .

Proof. As calculated before, $s(M_{12} \wr M_{12}) = 604576714$ and $|M_{12} \wr M_{12}| = 95040^{13}$ . If K is an arbitrary group, $|K \wr S_4| = |K|^4 \cdot 24$ , and so one can easily verify by induction that $|H| = 95040^{13\cdot 4^t} \cdot 24^{b_t} = 95040^{13\cdot 4^t} \cdot 24^{{(4^t - 1)}/{3}}$ .

Next we need some bounds on $s(H\wr S_4\wr S_4\wr S_4\wr S_4 \wr S_4)$ and $s(H\wr P_1 \wr \cdots \wr P_j)$ . We handle the first group by defining the sequence $A_0 = s(H)$ , $A_1 = s(H \wr S_4)$ , $A_2 = s(H \wr S_4 \wr S_4)$ , $A_3 =s(H \wr S_4 \wr S_4 \wr S_4)$ , $A_4 = s(H \wr S_4 \wr S_4 \wr S_4 \wr S_4)$ and $A_5 = s(H \wr S_4 \wr S_4 \wr S_4 \wr S_4 \wr S_4)$ . By Lemma 2.4(2), $A_{i+1} = {A_i + 3 \choose 4}$ for $0 \leq i \leq 4$ . Hence $A_{i+1} = {(A_i+3)(A_i+2)(A_i+1)(A_i)}/{24}$ and $A_{i+1}+3 \leq {(A_i+3)^4}/{24}$ since $A_0 \geq a_0 = 604576714$ . For simplicity, we set $A_0 = A$ . Then

$$ \begin{align*}A_5 = {A_4 + 3 \choose 4} \leq \frac{(A_4+3)^4}{24} \leq \frac{({(A_3+3)^4}/{24})^4}{24} = \frac{(A_3 + 3)^{16}}{24^5} \leq \cdots \leq \frac{(A+3)^{1024}}{24^{341}}.\end{align*} $$

Also $|H \wr S_4 \wr S_4 \wr S_4 \wr S_4 \wr S_4| = |H|^{1024}\cdot 24^{341}> |H|^{1024}\cdot 2.88^{1024}$ . Consequently,

$$ \begin{align*} \textit{ds}(H\wr S_4\wr S_4 \wr S_4\wr S_4 \wr S_4) &\leq \frac{\log_2 ( {(A+3)^{1024}}/{24^{341}})}{\log_2 |H|^{1024}\cdot 24^{341}} \\ &\leq \frac{\log_2 (A+3)^{1024} - \log_2 24^{341}}{ \log_2 |H|^{1024} \cdot 2.88^{1024}} \\ &= \frac{\log_2 (A+3) }{\log_2 2.88|H|} - \frac{ 341 \cdot \log_2 24}{1024 \log_2 2.88|H|}. \end{align*} $$

Next we obtain a similar bound for $s(H\wr P_1 \wr \cdots \wr P_j)$ . Consider $s(H\wr P_1)$ where deg $(P_1)=m_1 \neq 4$ . Note that $s(H\wr P_1) \geq A^{m_1}/ |P_1|$ by Lemma 2.4(1). From the proof of Lemma 2.5,

$$ \begin{align*}\textit{ds}(H\wr P_1\wr \cdots \wr P_j) \geq \frac{\log_2 A^{m_1}/|P_1|}{\log_2 |H|^{m_1}\cdot |P_1|} - \frac{\frac{23}{60} \log_2 24}{\log_2 |H|^{m_1}\cdot |P_1|}.\end{align*} $$

Since $|P_1| < 3^{m_1}$ by Lemma 2.6, we have

$$ \begin{align*} \textit{ds}(H\wr P_1\wr \cdots \wr P_j) &> \frac{\log_2 A}{\log_2 3|H|} - \frac{\log_2 |P_1|}{m_1 \log_2 3|H|} - \frac{\frac{23}{60} \log_2 24}{m_1 \log_2 3|H|} \\ &> \frac{\log_2 A}{\log_2 3|H|} - \frac{\log_2 |P_1|}{m_1 \log_2 2|H|} - \frac{\frac{23}{60} \log_2 24}{m_1 \log_2 2|H|}. \end{align*} $$

It suffices to show that

$$ \begin{align*} \frac{\log_2 A}{\log_2 3|H|} - \frac{\log_2 |P_1|}{m_1 \log_2 2|H|} - \frac{\frac{23}{60} \log_2 24}{m_1 \log_2 2|H|} & \geq \frac{\log_2 (A+3) }{\log_2 2|H|} - \frac{ 341 \cdot \log_2 24}{1024 \log_2 2|H|}. \end{align*} $$

By rearranging these terms, we can write this inequality as

$$ \begin{align*} \frac{\log_2 2|H|}{\log_2 3|H|} \cdot \log_2 A - \log_2 (A+3) &\geq \frac{\log_2 |P_1|}{m_1} + \frac{23 \cdot \log_2 24}{60 m_1} - \frac{341 \cdot \log_2 24 }{1024}. \end{align*} $$

Note that $|H| \geq 95040^{13}$ , so ${\log _2 2|H|}/{\log _2 3|H|} \geq 0.99729879$ . Further, we have $A \geq 604576714$ , so

$$ \begin{align*} & \frac{\log_2 2|H|}{\log_2 3|H|} \cdot \log_2 A - \log_2 (A+3) + \frac{341 \cdot \log_2 24}{1024} \\ &\quad \geq 0.99729879\cdot \log_2 A - \log_2(A+3) + \frac{341 \cdot \log_2 24}{1024} \geq 1.4480303828. \end{align*} $$

Thus it suffices to show that

$$ \begin{align*}\star(P_1) = \frac{\log_2 |P_1|}{m_1} + \frac{23 \log_2 24}{60 m_1} \leq 1.4480303828 = \gamma.\end{align*} $$

If $m_1 \geq 25$ , then $|P_1| \leq 2^{m_1}$ by Lemma 2.6 and $\star (P_1) \leq 1.08 < \gamma .$ Similar computations hold for $2 \leq m_1 \leq 24$ by reading off the bounds for $|P_1|$ from Table 2 of [Reference Yang10], and one obtains $\star (P_1) < \gamma $ in all cases except when $P_1 \cong M_{12}$ and $P_1 \cong \rm ASL(3,2)$ , a primitive group of degree $8$ . We now take care of these two cases.

Suppose $P_1 \cong M_{12}$ . Since $|M_{12}| = 95040 < 2.6^{12}$ ,

$$ \begin{align*} \textit{ds}(H \wr P_1 \wr \cdots \wr P_j) &\geq \frac{\log_2(A^{12}) - \log_2 95040 - \frac{23}{60}\log_2 24}{\log_2(95040|H|^{12})} \\ &> \frac{12\cdot \log_2(A) - \log_2 95040 - \frac{23}{60}\log_2 24}{12\cdot \log_2(2.6|H|)} \\ &= \frac{\log_2(A)}{\log_2(2.6|H|)} - \frac{\log_2 95040}{12 \cdot \log_2(2.6|H|)} - \frac{\frac{23}{60}\log_2 24}{12 \cdot \log_2(2.6|H|)}. \end{align*} $$

Given that $A \geq 604576714$ , it suffices to show that,

$$ \begin{align*} \frac{\log_2(A)}{\log_2(2.6|H|)} - \frac{\log_2 95040}{12\cdot \log_2(2.6|H|)} &- \frac{\frac{23}{60}\log_2 24}{12\cdot \log_2(2.6|H|)} \\ &\geq \frac{\log_2(A+3)}{\log_2 (2.88|H|)} - \frac{341\cdot \log_224}{1024\cdot \log_2(2.88|H|)}.\\[-14pt] \end{align*} $$

By rearranging these terms, we can write this inequality as

$$ \begin{align*} \frac{\log_2(2.88|H|) \cdot \log_2(A)}{\log_2(2.6|H|)} & - \log_2(A+3) + \frac{341 \cdot \log_224}{1024} \\ &\geq \frac{\log_2(2.88|H|)}{\log_2(2.6|H|)} \bigg( \frac{\log_2 95040}{12} + \frac{\frac{23}{60} \log_224}{12} \bigg). \end{align*} $$

Here $|H| = 95040^{13\cdot 4^t} \cdot 24^{{(4^t - 1)}/{3}}$ , where t is the number of terms of $S_4$ in H. Define

$$ \begin{align*} h_1(t) = \frac{\log_2(2.88|H|)}{\log_2(2.6|H|)} & = \frac{\log_2 2.88 + 13\cdot4^t\cdot\log_2 95040 + ({(4^t - 1)}/{3})\log_2 24}{\log_2 2.6 + 13\cdot4^t\cdot\log_2 95040 + ({(4^t - 1)}/{3})\log_2 24}, \\ a_1(x,t) & = h_1(t) \cdot \log_2 x - \log_2 (x+3) +\frac{341 \cdot \log_2 24}{1024}, \\ s_1(t) & = h_1(t) \cdot \bigg( \frac{\log_2 95040 + \frac{23}{60} \log_2 24}{12} \bigg). \end{align*} $$

It suffices to show that the inequality above, now translated as $a_1(x,t)> s_1(t)$ , holds for all $x \geq A=604576714$ and $t \geq 0$ .

Clearly $h_1(t)$ is a decreasing function and $h_1(t) \to 1$ as $t \to \infty $ . The function $a_1(x,t)$ is increasing for a fixed value of $t \geq 0$ , and achieves a minimum when $t\to \infty $ and $x = 604576714$ . Thus, $a_1(x,t) \geq 1.5268$ . Since $h_1(t)$ is decreasing, $s_1(t)$ is decreasing. So $s_1(t)$ achieves its maximum value for $t=1$ and $s_1(1) < 1.5248$ . Thus, $a_1(x,t)> s_1(t)$ for all x and t.

Finally, consider $P_1 \cong \rm ASL(3,2)$ , where $|\rm ASL(3,2)| = 1344 < 2.47^8$ . Thus,

$$ \begin{align*} \textit{ds}(H\wr P_1 \wr \cdots \wr P_j) &\geq \frac{\log_2 (A^8) - \log_2 1344 - \frac{23}{60} \log_2 24 }{\log_2 (|H|^8 \cdot 1344)} \\ &> \frac{ 8\cdot \log_2 (A) - \log_2 1344 - \frac{23}{60} \log_2 24 }{ 8\cdot \log_2 (2.47\cdot |H|)} \\ &= \frac{\log_2 A}{\log_2(2.47 |H|)} - \frac{\log_2 1344}{8\cdot \log_2 (2.47 |H|)} - \frac{\frac{23}{60} \log_2 24}{8 \cdot \log_2 (2.47 |H|)}. \end{align*} $$

It suffices to show that

$$ \begin{align*} \frac{\log_2 A}{\log_2(2.47 |H|)} - \frac{\log_2 1344}{8\cdot \log_2 (2.47 |H|)} & - \frac{\frac{23}{60} \log_2 24}{8\cdot \log_2 (2.47 |H|)} \\ &\geq \frac{\log_2(A+3)}{\log_2 (2.88|H|)} - \frac{341\cdot \log_224}{1024\cdot \log_2(2.88|H|)}. \end{align*} $$

By rearranging the terms, we can write this inequality as

$$ \begin{align*} \frac{\log_2 (2.88|H|) \cdot \log_2 A}{\log_2 (2.47|H|)} & - \log_2 (A+3) + \frac{341 \cdot \log_2 24}{1024} \\[4pt] &\geq \frac{\log_2 (2.88|H|)}{\log_2 (2.47|H|)} \bigg(\frac{\log_2 (1344) + \frac{23}{60} \log_2 24}{8} \bigg). \end{align*} $$

As before, $|H| = 95040^{13\cdot 4^t} \cdot 24^{{(4^t - 1)}/{3}}$ , where t is the number of terms of $S_4$ in H. Define

$$ \begin{align*} h_2(t) & = \frac{\log_2 2.88 + 13\cdot4^t\cdot\log_2 95040 + ({(4^t - 1)}/{3})\log_2 24}{\log_2 2.47 + 13\cdot4^t\cdot\log_2 95040 + ({(4^t - 1)}/{3})\log_2 24}, \\[4pt] a_2(x, t) & = h_2(t) \cdot \log_2 x - \log_2 (x+3) + \frac{341 \cdot \log_2 24}{1024}, \\[4pt] s_2(t) & = h_2(t) \cdot \bigg(\frac{\log_2 (1344) + \frac{23}{60} \log_2 24}{8} \bigg). \end{align*} $$

Again, $h_2(t)$ is a decreasing function with $h_2(t) \to 1$ as $t \to \infty $ and $a_2(x,t)$ is increasing for a fixed value of t. We still have $a_2(x, t) \geq 1.526$ and $s_2(t)$ achieves its maximum value for $t = 1$ and $s_2(1) < 1.520$ . Thus, $a_2(x,t)> s_2(t)$ for all x and t.

Proof. Let G be a permutation group. Let $M = \lim _{k\to \infty } c_k$ so that $M < c_8$ . By our earlier remarks, G is transitive. By Proposition 2.7, if G is primitive, $\textit {ds}(G)> c_8 > M$ . So we assume that G is imprimitive.

By Theorem 2.8, G is induced from $M_{12}$ and, by Theorem 2.9, G is induced from ${M_{12} \wr M_{12}}$ . By Theorem 2.10, $\inf ( {\log _2 s(G)}/{\log _2 |G|} ) = \lim _{k\to \infty } c_k$ .