Proof. Let $\vert Y\vert =m\leq n=\vert X\setminus Y\vert $ and write $X=Y\,\dot \cup \, Z$ . Clearly,

$$ \begin{align*}H(Y)=\{\pi\in G(X):\vert Y\pi\cap Z\vert <m\}.\end{align*} $$

Suppose that $\alpha ,\beta \in H(Y)$ . Since $Y\alpha =(Y\alpha \cap Y)\cup (Y\alpha \cap Z)$ , we have

$$ \begin{align*}Y\alpha\beta\cap Z\subseteq (Y\beta\cap Z)\cup ((Y\alpha\cap Z)\beta\cap Z).\end{align*} $$

So, $\vert Y\alpha \beta \cap Z\vert \leq \vert Y\beta \cap Z\vert +\vert Y\alpha \cap Z\vert <m+m=m$ and $\alpha \beta \in H(Y)$ .

Write $Y=\{a_k\}\,\dot \cup \,\{a_j\}=\{b_j\}\,\dot \cup \,\{c_j\}$ and $Z=\{x_j\}\,\dot \cup \,\{x_i\}=\{y_k\}\,\dot \cup \,\{y_i\}$ , where $\vert K\vert <m =\vert J\vert $ and $\vert I\vert =n$ . Define $\alpha \in G(X)$ by

(2.1) $$ \begin{align} \alpha=\bigg(\begin{array}{@{}cccc@{}} a_k&a_j&x_j&x_i\\ y_k&b_j&c_j&y_i \end{array}\bigg). \end{align} $$

Clearly, $Y\alpha \cap Y=\{b_j\}$ and $Y\alpha \cap Z=\{y_k\}$ , so $\alpha \in H(Y)$ . But $Y\alpha ^{-1}\cap Z=\{x_j\}$ , so ${\alpha ^{-1}\notin H(Y)}$ . That is, $H(Y)$ is a subsemigroup of $G(X)$ that is not a group.

To show that $H(Y)$ is maximal, we let $h\in G(X)\setminus H(Y)$ and show that every ${g\in G(X)\setminus H(Y)}$ belongs to $\langle H(Y),h\rangle $ , the semigroup generated by $H(Y)\cup \{h\}$ : in other words, $G(X)=\langle H(Y),h\rangle $ . To do this, we consider four cases.

First, note that if $h,g\notin H(Y)$ , then $\vert Yh\cap Z\vert \geq m$ and $\vert Yg\cap Z\vert \geq m$ . But ${\vert Yh\vert =\vert Yg\vert = \vert Y\vert =m}$ , and so $\vert Yh\cap Z\vert =m=\vert Yg\cap Z\vert $ . In addition, h can be written as

$$ \begin{align*}h=\bigg(\begin{array}{@{}cccc@{}} Y\cap Zh^{-1} & Y\cap Yh^{-1} & Z\cap Zh^{-1} & Z\cap Yh^{-1}\cr Yh\cap Z & Yh\cap Y & Zh\cap Z & Zh\cap Y \end{array}\bigg).\end{align*} $$

By this, we mean that, for each set in the first row, there is a bijection (determined by the permutation h) between it and the set below it. Note that, in general, one or more of the intersections may be empty. However, if $Zh\cap Y=\emptyset $ , then $Zh=Zh\cap Z$ , and so $Z=Z\cap Zh^{-1}$ and $Y=Y\cap Yh$ , and likewise for other possibilities.

Case 1. Suppose that $\vert Z\cap Yg^{-1}\vert <m$ and $\vert Z\cap Yh^{-1}\vert <m$ . Since $\vert Z\vert =n\geq m$ , we have ${\vert Z\cap Zg^{-1}\vert =n=\vert Z\cap Zh^{-1}\vert }$ . Also, ${\vert Yg^{-1}\vert =\vert Yh^{-1}\vert =\vert Y\vert =m}$ implies that $\vert Y\cap Yg^{-1}\vert = m= \vert Y\cap Yh^{-1}\vert $ . Write

$$ \begin{align*} Y\cap Yg^{-1}&=B_1\,\dot\cup\, B_2,\quad\vert B_1\vert =m,\ \vert B_2\vert =\vert Z\cap Yh^{-1}\vert,\cr Y\cap Yh^{-1}&=C_1\,\dot\cup\, C_2,\quad\vert C_1\vert =m,\ \vert C_2\vert =\vert Z\cap Yg^{-1}\vert, \end{align*} $$

and consider $\pi _1,\pi _2\in G(X)$ , defined as follows:

$$ \begin{align*} \pi_1&=\bigg(\begin{array}{@{}ccccc@{}} Y\cap Zg^{-1} & B_1 & Z\cap Yg^{-1} & Z\cap Zg^{-1}&B_2\\ Y\cap Zh^{-1} & C_1 & C_2& Z\cap Zh^{-1}& Z\cap Yh^{-1} \end{array}\bigg),\\ h&=\bigg(\begin{array}{@{}ccccc@{}} Y\cap Zh^{-1} & C_1&C_2 & Z\cap Zh^{-1} & Z\cap Yh^{-1}\cr Yh\cap Z & C_1h&C_2h & Zh\cap Z & Zh\cap Y \end{array}\bigg),\\ \pi_2&=\bigg(\begin{array}{@{}ccccc@{}} Yh\cap Z & C_1h&C_2h & Zh\cap Z & Zh\cap Y\\ Yg\cap Z & B_1g&Zg\cap Y & Zg\cap Z &B_2g \end{array}\bigg). \end{align*} $$

Clearly, $\pi _1$ and $\pi _2$ are well-defined permutations of X (this depends, in part, on our choice of sets and their cardinals). Now $Y\pi _1\cap Z=Z\cap Yh^{-1}$ , which has cardinal less than m by supposition, so $\pi _1\in H(Y)$ . Also, $Y\pi _2\cap Z=\emptyset $ , so $\pi _2\in H(Y)$ . Moreover, ${g=\pi _1 h\pi _2}$ provided we define $\pi _2$ as follows. If, for example, $x\in B_1$ , then $\pi _2$ maps $C_1h$ to $B_1g$ via $x\pi _1h\mapsto xg$ , and likewise for each set in the first row of $\pi _2$ .

Case 2. Suppose that $\vert Z\cap Yg^{-1}\vert <m$ and $\vert Z\cap Yh^{-1}\vert =m$ . Then $\vert Y\cap Yg^{-1}\vert =m$ and ${\vert Z\cap Zg^{-1}\vert =n}$ , but now $\vert Y\cap Yh^{-1}\vert $ and $\vert Z\cap Zh^{-1}\vert $ may be unequal and less than m and n, respectively. In fact, this case is more complicated than the others. Clearly, if $m<n$ , then $\vert Z\cap Zh^{-1}\vert =n$ . On the other hand, if $m=n$ , then $\vert Z\cap Zg^{-1}\vert =m\geq \vert Z\cap Zh^{-1}\vert $ . Write

$$ \begin{align*} Y\cap Yg^{-1} &=B_1\,\dot\cup\, B_2,\qquad\quad \vert B_1\vert =m,\ \vert B_2\vert =\vert Y\cap Yh^{-1}\vert,\cr Z\cap Z g^{-1} &=C_1\,\dot\cup\, C_2,\qquad\ \ \,\, \vert C_1\vert =m,\ \vert C_2\vert =\vert Z\cap Zh^{-1}\vert,\cr Z\cap Y h^{-1} &= E_1\,\dot\cup\, E_3,\qquad\quad \vert E_1\vert =m,\ \vert E_3\vert =\vert Z\cap Y g^{-1}\vert,\cr Y\cap Z h^{-1} &=D_1\,\dot\cup\, D_2,\qquad\ \ \, \vert D_1\vert =\vert D_2\vert=m,\cr &=F_1\,\dot\cup\, F_2\,\dot\cup\, F_3,\quad \vert F_1\vert =\vert F_2\vert=m,\ \vert F_3\vert =\vert E_3\vert. \end{align*} $$

Now define $\pi _1,\pi _2,\pi _3\in G(X)$ as follows:

$$ \begin{align*} \pi_1&=\bigg(\begin{array}{@{}cccccc@{}} Y\cap Zg^{-1} & B_1 &B_2& C_2&C_1&Z\cap Yg^{-1}\cr D_2 & D_1 & Y\cap Yh^{-1}& Z\cap Zh^{-1}& E_1&E_3 \end{array}\bigg),\\ h&=\bigg(\begin{array}{@{}cccccc@{}} D_2&D_1 & Y\cap Y h^{-1} & Z\cap Zh^{-1} & E_1&E_3\\ D_2h & D_1h& Yh\cap Y & Zh\cap Z & E_1h&E_3h \end{array}\bigg),\\ \pi_2&=\bigg(\begin{array}{@{}cccccc@{}} D_2h & D_1h& Yh\cap Y & Zh\cap Z & E_1h&E_3h\\ F_2 &Z\cap Y h^{-1} & Y\cap Yh^{-1}& Z\cap Zh^{-1}& F_1&F_3 \end{array}\bigg),\\ h&=\bigg(\begin{array}{@{}cccccc@{}} F_2&Z\cap Yh^{-1} & Y\cap Y h^{-1} & Z\cap Zh^{-1} & F_1&F_3\\ F_2h & Zh\cap Y& Yh\cap Y & Zh\cap Z & F_1h&F_3h \end{array}\bigg),\\ \pi_3&=\bigg(\begin{array}{@{}cccccc@{}} F_2h & Zh\cap Y&Yh\cap Y& Zh\cap Z & F_1h&F_3h\\ Yg\cap Z & B_1g&B_2g & C_2g&C_1g &Zg\cap Y \end{array}\bigg). \end{align*} $$

Clearly, $\pi _1,\pi _2$ and $\pi _3$ are well-defined permutations of X. Note that $Y\pi _1\cap Z=\emptyset $ , so $\pi _1\in H(Y)$ . Also, $E_1h\subseteq Y$ and $F_1\subseteq Y$ (and likewise for $E_3h$ and $F_3$ ), so $Y\pi _2\cap Z=\emptyset $ and $\pi _2\in H(Y)$ . In addition, $F_ih\subseteq Z$ and $B_jg\subseteq Y$ for $i=1,2,3$ and $j=1,2$ . Therefore, $Y\pi _3\cap Z=\emptyset $ and $\pi _3\in H(Y)$ . Furthermore, by defining $\pi _3$ in a suitable manner, we have $g=\pi _1 h\pi _2 h\pi _3$ .

Case 3. Suppose that $\vert Z\cap Yg^{-1}\vert =m$ and $\vert Z\cap Yh^{-1}\vert <m$ . In this event, ${\vert Y\cap Y h^{-1}\vert =m}$ and $\vert Z\cap Z h^{-1}\vert =n$ , whereas $\vert Z\cap Zg^{-1}\vert $ and $\vert Y\cap Yg^{-1}\vert $ are unknown. As before, if $m<n$ , then $\vert Z\cap Zg^{-1}\vert =n$ ; if $m=n$ , then $\vert Z\cap Zh^{-1}\vert =m\geq \vert Z\cap Zg^{-1}\vert $ . Write

$$ \begin{align*} Z\cap Yg^{-1}&=B_1\,\dot\cup\, B_2\,\dot\cup\, B_3,\quad \vert B_1\vert = \vert B_2\vert =m,\ \vert B_3\vert=\vert Z\cap Yh^{-1}\vert,\cr Y\cap Z h^{-1}&=C_1\,\dot\cup\, C_2,\ \ \,\,\quad\quad \vert C_1\vert =m,\ \vert C_2\vert =\vert Y\cap Yg^{-1}\vert,\cr Z\cap Z h^{-1}&=D_2\,\dot\cup\, D_1,\ \ \,\quad\quad \vert D_2\vert =m,\ \vert D_1\vert =\vert Z\cap Zg^{-1}\vert. \end{align*} $$

Now define $\pi _1,\pi _2\in G(X)$ as follows:

$$ \begin{align*}\pi_1&=\bigg(\begin{array}{@{}cccccc@{}} Y\cap Zg^{-1} & Y\cap Y g^{-1}& B_1& B_2&Z\cap Z g^{-1}&B_3\\ C_1 & C_2 & Y\cap Yh^{-1}& D_2 &D_1 & Z\cap Y h^{-1} \end{array}\bigg),\\ h&=\bigg(\begin{array}{@{}cccccc@{}} C_1 &C_2 & Y\cap Y h^{-1} & D_2&D_1 & Z\cap Y h^{-1}\cr C_1h & C_2h& Yh\cap Y & D_2h&D_1h& Zh\cap Y \end{array}\bigg),\\ \pi_2&=\bigg(\begin{array}{@{}cccccc@{}} C_1h & C_2h& Yh\cap Y & D_2h&D_1h& Zh\cap Y\\ Yg\cap Z& Yg\cap Y& B_1g& B_2g& Zg\cap Z& B_3g \end{array}\bigg). \end{align*} $$

Clearly, $\pi _1$ and $\pi _2$ are permutations of X. Also, $Y\pi _1\cap Z=\emptyset =Y\pi _2\cap Z$ , so ${\pi _1,\pi _2\in H(Y)}$ . As before, $g=\pi _1 h\pi _2$ if $\pi _2$ is defined suitably.

Case 4. Suppose that $\vert Z\cap Yg^{-1}\vert =m$ and $\vert Z\cap Yh^{-1}\vert =m$ . In this case, each of the cardinals $\vert Y\cap Y g^{-1}\vert ,\vert Z\cap Z g^{-1}\vert $ and $\vert Y\cap Yh^{-1}\vert ,\vert Z\cap Zh^{-1}\vert $ is unknown. If $m=n$ , write

$$ \begin{align*} Z\cap Yg^{-1}&=B_1\,\dot\cup\, B_2\,\dot\cup\, B_3,\quad \vert B_1\vert =\vert Y\cap Yh^{-1}\vert,\ \vert B_2\vert =\vert Z\cap Zh^{-1}\vert,\ \vert B_3\vert=m,\cr Y\cap Z h^{-1}&=C_1\,\dot\cup\, C_2\,\dot\cup\, C_3,\quad \vert C_1\vert =m,\ \vert C_2\vert =\vert Y\cap Yg^{-1}\vert,\ \vert C_3\vert=\vert Z\cap Zg^{-1}\vert, \end{align*} $$

and define $\pi _1,\pi _2\in G(X)$ as follows:

$$ \begin{align*} \pi_1&=\bigg(\begin{array}{@{}cccccc@{}} Y\cap Zg^{-1} & Y\cap Y g^{-1}& Z\cap Z g^{-1}&B_1&B_2&B_3\\ C_1 & C_2 & C_3& Y\cap Yh^{-1}& Z\cap Zh^{-1}& Z\cap Y h^{-1} \end{array}\bigg),\\ h&=\bigg(\begin{array}{@{}cccccc@{}} C_1 &C_2 &C_3& Y\cap Y h^{-1} & Z\cap Zh^{-1}& Z\cap Y h^{-1}\cr C_1h & C_2h& C_3h& Yh\cap Y & Zh\cap Z& Zh\cap Y \end{array}\bigg),\\ \pi_2&=\bigg(\begin{array}{@{}cccccc@{}} C_1h & C_2h& C_3h& Yh\cap Y & Zh\cap Z& Zh\cap Y\\ Yg\cap Z& Yg\cap Y& Zg\cap Z& B_1g&B_2g& B_3g \end{array}\bigg). \end{align*} $$

On the other hand, if $m<n$ , then $\vert Z\cap Z g^{-1}\vert =\vert Z\cap Zh^{-1}\vert =n$ . In this case, write

$$ \begin{align*} Z\cap Yg^{-1}&=B_1\,\dot\cup\, B_2,\quad \vert B_1\vert=m,\ \vert B_2\vert =\vert Y\cap Yh^{-1}\vert,\cr Y\cap Z h^{-1}&=C_1\,\dot\cup\, C_2,\quad \vert C_1\vert =m,\ \vert C_2\vert =\vert Y\cap Yg^{-1}\vert, \end{align*} $$

and define $\pi _1,\pi _2\in G(X)$ as follows:

$$ \begin{align*} \pi_1&=\bigg(\begin{array}{@{}ccccc@{}} Y\cap Zg^{-1} & Y\cap Y g^{-1}& Z\cap Z g^{-1}&B_1&B_2\\ C_1 & C_2 & Z\cap Zh^{-1}& Z\cap Y h^{-1}& Y\cap Yh^{-1} \end{array}\bigg),\\h&=\bigg(\begin{array}{@{}ccccc@{}} C_1 &C_2 & Z\cap Zh^{-1}& Z\cap Y h^{-1}& Y\cap Y h^{-1}\cr C_1h & C_2h & Zh\cap Z& Zh\cap Y& Yh\cap Y \end{array}\bigg),\\\pi_2&=\bigg(\begin{array}{@{}ccccc@{}} C_1h & C_2h & Zh\cap Z& Zh\cap Y& Yh\cap Y\\ Yg\cap Z& Yg\cap Y& Zg\cap Z& B_1g&B_2g \end{array}\bigg). \end{align*} $$

In both cases, $\pi _1,\pi _2\in G(X)$ and $Y\pi _1\cap Z=\emptyset =Y\pi _2\cap Z$ . Hence, $\pi _1,\pi _2\in H(Y)$ and, as before, $g=\pi _1 h\pi _2$ for a suitably defined $\pi _2$ .

Proof. First, suppose that $\vert A\vert =m$ for some $m{\kern-1pt}\in{\kern-1pt} \mathbb {N}\setminus \{1\}$ , and write $A{\kern-1pt}={\kern-1pt}\{a_1,a_2,\dots ,a_m\}$ . Let $X\setminus A=\{x_1,x_2,\dots ,x_m\}\,\dot \cup \,\{y_i\}$ , with $\vert I\vert =n\geq \aleph _0>m$ , and define $\alpha ,\beta \in G(X)$ by

$$ \begin{align*}\alpha=\bigg(\begin{array}{@{}ccccccccc@{}} a_1&a_2&\dots&a_m&x_1&x_2&\dots&x_m&y_i\cr a_1&x_2&\dots&x_m&x_1&a_2&\dots&a_m&y_i \end{array}\bigg),\end{align*} $$

$$ \begin{align*}\beta=\bigg(\begin{array}{@{}ccccccccc@{}}a_1&a_2&\dots&a_m&x_1&x_2&\dots&x_m&y_i\cr x_1&a_2&\dots&a_m&a_1&x_2&\dots&x_m&y_i \end{array}\bigg).\end{align*} $$

It is easy to verify that $\vert A\alpha \setminus A\vert =m-1$ and $\vert A\beta \setminus A\vert =1$ , and hence $\alpha ,\beta \in H(A)$ . But $\vert A(\alpha \beta )\setminus A\vert =m$ , and so $\alpha \beta \notin H(A)$ . Therefore, $H(A)$ is not a semigroup when ${2\leq \vert A\vert <\aleph _0}$ .

On the other hand, if A is infinite but $\vert A\vert>\vert X\setminus A\vert $ , then $\vert A\vert =\vert X\vert $ . Given that $\pi \in G(X)$ , $A\pi \setminus A\subseteq X\setminus A$ . Therefore, $\vert A\pi \setminus A\vert \leq \vert X\setminus A\vert <\vert A\vert $ , and so $H(A)=G(X)$ . Thus, we have just proved that $\vert A\vert =1$ or $\aleph _0\leq \vert A\vert \leq \vert X\setminus A\vert $ when $H(A)$ is a maximal subsemigroup of $G(X)$ .

Conversely, assume that $\vert A\vert =1$ and write $A=\{a\}$ . Clearly,

$$ \begin{align*}H(A)=\{\pi\in G(X): A\pi\setminus A=\emptyset\}=\{\pi\in G(X): a\pi=a\}. \end{align*} $$

It is not difficult to see that $H(A)$ is a subsemigroup of $G(X)$ . In fact, it is a subgroup of $G(X)$ . Next, we prove that $H(A)$ is a maximal subsemigroup. To do this, we let ${h\in G(X)\setminus H(A)}$ and we show that $g\in \langle H(A),h\rangle $ for every $g\in G(X)\setminus H(A)$ . Since $h,g\notin H(A)$ , it follows that $ah=b$ and $ag=c$ for some $b,c\in X\setminus \{a\}$ . Also, there exist $d,e\in X\setminus \{a\}$ such that $dh=a$ and $eg=a$ . Write $X=\{a,e\}\,\dot \cup \, Y=\{a,d\}\,\dot \cup \, Z$ and define $\pi _1,\pi _2$ in $G(X)$ by

$$ \begin{align*}\pi_1=\bigg(\begin{array}{@{}ccc@{}} a&e&Y\\ a&d&Z \end{array}\bigg),\quad \pi_2=\bigg(\begin{array}{@{}ccc@{}} a&b&Zh\\ a&c&Yg \end{array}\bigg).\end{align*} $$

Clearly, $\pi _1,\pi _2\in H(A)$ and $g=\pi _1h\pi _2$ if $\pi _2$ is suitably defined. Thus, $H(A)$ is a maximal subsemigroup of $G(X)$ if $\vert A\vert =1$ . By Proposition 2.1, this is also true if $\aleph _0\leq \vert A\vert \leq \vert X\setminus A\vert $ .

Proof. Write $S^1=\{ a_i \}$ . Let F be any field and let $F_i$ be a copy of F for each $i\in I$ . As in [Reference Hungerford6, page 182, Remark (c)], we let V be the vector space $\sum F_i$ over F whose basis can be identified in a natural way with $\{ a_i \}$ : that is, $\sum F_i$ is the set of all $(r_i)_{i\in I}$ , where $r_i\in F_i$ and at most finitely many $r_i$ are nonzero.

For each $x\in S$ , let $\rho _{x}:S^1 \to S^1,a_i\mapsto a_ix$ , be a mapping of the basis $\{a_i\}$ into itself (note that $\rho _x$ may not be injective). Hence, $\rho _{x}$ can be extended by linearity to an element of $T(V)$ that we also denote by $\rho _x$ . Clearly, for each $x,y\in S$ , $\rho _{xy}$ and $\rho _x\circ \rho _y$ agree on the basis $\{a_i\}$ , and hence they agree on all of V. That is, the mapping $\rho :S\to T(V), x\to \rho _x$ , is a homomorphism. Moreover, since $1\in \{a_i\}$ , $\rho _x=\rho _y$ implies that $x=y$ , so $\rho $ is injective and the result follows.

Proof. Suppose that $\{a_i\}$ is a basis for V and $\vert F\vert \geq 3$ . In this case, if $k_i\in F\setminus \{0,1\}$ for each i, then $\{k_ia_i\}$ is a basis for V that differs from $\{a_i\}$ . Now each bijection $k_ia_i\mapsto a_i$ extends by linearity to some $\pi _k\in G(V)$ , and $\pi _k\neq \pi _{k'}$ for $k\neq k'$ . Note that there are $\vert F \vert ^n$ bases for V of the form $\{k_ia_i\}$ . Since $\vert G(A)\vert =2^n$ for each basis A of V,

$$ \begin{align*}\vert G(V)\vert\geq 2^n.\vert F\vert^n=(n.\vert F\vert)^n=\vert V\vert^n.\end{align*} $$

But $\vert V \vert ^n=\vert T(V)\vert \geq \vert G(V)\vert $ , and equality follows. Now suppose that $\vert F\vert =2$ . For each fixed $i_0\in I$ , write $I'=I\setminus \{i_0\}$ and choose $j_0\in I'$ . Then $\{a_i:i\in I'\}\,\dot \cup \,\{a_{i_0}+a_{j_0}\}$ is a basis for V and so the number of bases for V is at least n. Hence,

$$ \begin{align*}\vert G(V)\vert\geq n.2^n=(n.2)^n=\vert V\vert^n,\end{align*} $$

and thus we also have equality in the case $\vert F \vert =2$ .

Proof. Suppose that $\alpha ,\beta \in H(W)$ and let $W\alpha \cap W=\langle a_i\rangle $ . Write $W\alpha =\langle a_i\rangle \oplus \langle b_j\rangle $ , where $\vert J\vert =\mathop {\mathrm {dim}}\, W\alpha /(W\alpha \cap W) <m$ . Since $\alpha \in G(V)$ , there exist unique $w_i$ , $w_j$ in W such that $a_i=w_i\alpha $ and $b_j=w_j\alpha $ for every i and every j. It is not difficult to see that $W=\langle w_i\rangle \oplus \langle w_j\rangle $ . On the other hand, $\langle a_i\rangle \subseteq W$ and we may write $W=\langle a_i\rangle \oplus \langle a_\ell \rangle $ . Moreover, $\{a_i\}\,\dot \cup \,\{a_\ell \}\,\dot \cup \,\{b_j\}$ is a linearly independent subset of V and

$$ \begin{align*}V=\langle a_i\rangle\oplus\langle a_\ell\rangle\oplus\langle b_j\rangle\oplus \langle b_t\rangle,\end{align*} $$

where T may be empty. Also, if $v_\ell ,v_t\in V$ are such that $v_\ell \alpha =a_\ell $ and $v_t\alpha =b_t$ , for each $\ell $ and each t, then $V=\langle w_i\rangle \oplus \langle w_j\rangle \oplus \langle v_\ell \rangle \oplus \langle v_t\rangle $ . Note that

$$ \begin{align*}\alpha=\bigg(\begin{array}{@{}cccc@{}} w_i&w_j&v_\ell&v_t\cr a_i&b_j&a_\ell&b_t\end{array}\bigg).\end{align*} $$

Write $\langle a_i\beta \rangle \cap W=\langle c_r\rangle $ and $\langle a_i\beta \rangle =\langle c_r\rangle \oplus \langle c_s\rangle $ . Similarly, let $\langle b_j\beta \rangle \cap W=\langle d_x\rangle $ and $\langle b_j\beta \rangle =\langle d_x\rangle \oplus \langle d_y\rangle $ . Then

$$ \begin{align*}W\beta=\langle a_i\beta\rangle\oplus\langle a_\ell\beta\rangle=\langle c_r\rangle\oplus\langle c_s\rangle\oplus\langle a_\ell\beta\rangle\end{align*} $$

and

$$ \begin{align*}W\alpha\beta=\langle a_i\beta\rangle\oplus\langle b_j\beta\rangle=\langle c_r\rangle\oplus\langle c_s\rangle\oplus\langle d_x\rangle\oplus\langle d_y\rangle.\end{align*} $$

Since $\langle c_r\rangle \oplus \langle d_x\rangle \subseteq W$ , we have $\mathop {\mathrm {dim}}\, W\alpha \beta /(W\alpha \beta \cap W)\leq \vert S\vert +\vert Y\vert $ . But we also have $\vert J\vert =\mathop {\mathrm {dim}} W\alpha / (W\alpha \cap W)<m$ and $\vert Y\vert \leq \vert J\vert $ . Also,

$$ \begin{align*}\vert S\vert= \mathop{\mathrm{dim}}\,\langle a_i\beta\rangle/(\langle a_i\beta\rangle\cap W)\leq \mathop{\mathrm{dim}}\, W\beta/(W\beta\cap W)<m.\end{align*} $$

Thus, $\vert S\vert +\vert Y\vert <m+m=m$ , and $\alpha \beta \in H(W)$ .

Now write $W\kern1.5pt{=}\kern1.5pt\langle w_k\rangle \oplus \langle w_j\rangle \kern1.5pt{=}\kern1.5pt\langle v_j\rangle \oplus \langle u_j\rangle $ and ${V\kern1.5pt{=}\kern1.5pt W\oplus \langle a_j\rangle \oplus \langle a_i\rangle \kern1.5pt{=}\kern1.5pt W\oplus \langle b_k\rangle \oplus \langle b_i\rangle }$ , where $\vert K\vert <\vert J\vert =m\leq n=\vert I\vert =\mathop {\mathrm {codim}} W$ . Define $\alpha \in G(V)$ by

$$ \begin{align*}\alpha=\bigg(\begin{array}{@{}cccc@{}} w_k&w_j&a_j&a_i\\ b_k&v_j&u_j&b_i \end{array}\bigg).\end{align*} $$

Clearly, $W\alpha =\langle b_k\rangle \oplus \langle v_j\rangle $ and so $\mathop {\mathrm {dim}}\, W\alpha /(W\alpha \cap W)=\vert K\vert <m$ . Thus, $\alpha \in H(W)$ . But $W\alpha ^{-1}=\langle w_j\rangle \oplus \langle a_j\rangle $ , and hence $\mathop {\mathrm {dim}}\, W\alpha ^{-1}/(W\alpha ^{-1}\cap W)=\vert J\vert =m$ and $\alpha ^{-1}\notin H(W)$ . In other words, we have just shown that $H(W)$ is a subsemigroup of $G(V)$ that is not a group.

To show that $H(W)$ is maximal, we let $h\in G(V)\setminus H(W)$ and we show that, for every $g\in G(V)\setminus H(W)$ , we have $g\in \langle H(W),h\rangle $ . Given that $h,g\in G(V)\setminus H(W)$ , we have $\mathop {\mathrm {dim}}\, Wh/(Wh\cap W)\geq m$ and $\mathop {\mathrm {dim}}\, Wg/(Wg\cap W)\geq m$ . But $\mathop {\mathrm {dim}}\, Wh=\mathop {\mathrm {dim}}\, Wg=\mathop {\mathrm {dim}}\, W=m$ , since $h,g\in G(V)$ . Therefore,

$$ \begin{align*}\mathop{\mathrm{dim}}\, Wh/(Wh\cap W)=\mathop{\mathrm{dim}}\, Wg/(Wg\cap W)=m.\end{align*} $$

Write $Wg^{-1}\cap W=\langle a_ig^{-1}\rangle $ and $Wg^{-1}=\langle a_ig^{-1}\rangle \oplus \langle b_\ell g^{-1}\rangle $ . Then $W=\langle a_i\rangle \oplus \langle b_\ell \rangle $ . Also, we may write $W=\langle a_ig^{-1}\rangle \oplus \langle u_jg^{-1}\rangle $ and $V=\langle a_ig^{-1}\rangle \oplus \langle u_jg^{-1}\rangle \oplus \langle b_\ell g^{-1}\rangle \oplus \langle u_k g^{-1}\rangle $ . Clearly, $\vert L\vert +\vert K\vert =\mathop {\mathrm {codim}} W$ and $\vert I\vert +\vert J\vert =\vert I\vert +\vert L\vert =m$ . Since $W=\langle a_i\rangle \oplus \langle b_\ell \rangle $ and $Wg=\langle (a_ig^{-1})g\rangle \oplus \langle (u_jg^{-1})g\rangle =\langle a_i\rangle \oplus \langle u_j\rangle $ ,

$$ \begin{align*}m=\mathop{\mathrm{dim}}\, Wg/(Wg\cap W)\leq \vert J\vert\leq \mathop{\mathrm{dim}}\, Wg=m,\end{align*} $$

and hence $\vert J\vert =m$ .

Proceeding similarly, write $Wh^{-1}{\kern-1pt}\cap{\kern-1pt} W=\langle c_ph^{-1}\rangle $ , $Wh^{-1}{\kern-1pt}={\kern-1pt}\langle c_ph^{-1}\rangle \oplus \langle d_q h^{-1}\rangle $ and $W=\langle c_ph^{-1}\rangle \oplus \langle v_rh^{-1}\rangle $ . Then $W=\langle c_p\rangle \oplus \langle d_q\rangle $ and we may write

$$ \begin{align*}V=\langle c_ph^{-1}\rangle\oplus\langle v_rh^{-1}\rangle\oplus\langle d_q h^{-1}\rangle\oplus\langle v_s h^{-1}\rangle.\end{align*} $$

As before, we may conclude that $\vert P\vert +\vert Q\vert =\vert P\vert +\vert R\vert =m$ , $\vert Q\vert +\vert S\vert =\mathop {\mathrm {codim}} W$ and $\vert R\vert =m$ .

Case 1. Suppose that $\mathop {\mathrm {dim}}\, Wh^{-1}/(Wh^{-1}\cap W)<m$ and $\mathop {\mathrm {dim}}\, Wg^{-1}/(Wg^{-1}\cap W)<m$ . Then $\vert L\vert =\mathop {\mathrm {dim}}\, Wg^{-1}/(Wg^{-1}\cap W)<m\leq \mathop {\mathrm {codim}} W$ , so $\vert K\vert =\mathop {\mathrm {codim}} W$ and $\vert I\vert =m$ . Since $\vert J\vert =\vert I\vert $ , we may write $\{u_jg^{-1}\}$ as $\{u_ig^{-1}\}$ .

Analogously, $\vert Q\vert <m=\vert P\vert =\vert R\vert $ and $\vert S\vert =\mathop {\mathrm {codim}} W$ . Therefore, we may write $\{c_ph^{-1}\}$ , $\{v_rh^{-1}\}$ and $\{v_sh^{-1}\}$ as $\{c_ih^{-1}\}$ , $\{v_ih^{-1}\}$ and $\{v_kh^{-1}\}$ , respectively. Since $\vert Q\vert <\vert I\vert $ , $\vert L\vert <\vert I\vert $ and $\vert I\vert =m\geq \aleph _0$ , we may write

$$ \begin{align*}\langle a_ig^{-1}\rangle=\langle w_ig^{-1}\rangle\oplus\langle w_qg^{-1}\rangle,\quad \langle c_ih^{-1}\rangle=\langle y_ih^{-1}\rangle\oplus\langle y_\ell h^{-1}\rangle.\end{align*} $$

Now define $\pi _1,\pi _2$ in $G(V)$ by

$$ \begin{align*}\pi_1=\bigg(\begin{array}{@{}ccccc@{}}u_ig^{-1}&w_ig^{-1}&b_\ell g^{-1}&u_k g^{-1}&w_q g^{-1}\cr v_ih^{-1}&y_ih^{-1}&y_\ell h^{-1}&v_k h^{-1}&d_q h^{-1} \end{array}\bigg),\quad \pi_2=\bigg(\begin{array}{ccccc}v_i&y_i&y_\ell&v_k&d_q\cr u_i&w_i&b_\ell&u_k&w_q \end{array}\bigg).\end{align*} $$

Clearly, $g=\pi _1 h\pi _2$ . It is not difficult to see that ${W\pi _1=\langle v_ih^{-1}\rangle \oplus \langle y_ih^{-1}\rangle \oplus \langle d_qh^{-1}\rangle }$ . But $\langle v_ih^{-1}\rangle \oplus \langle y_ih^{-1}\rangle \subseteq W$ , and so $\mathop {\mathrm {dim}}\, W\pi _1/(W\pi _1\cap W)\leq \vert Q\vert <m$ . On the other hand, $W\pi _2=\langle w_i\rangle \oplus \langle b_\ell \rangle \oplus \langle w_q\rangle \subseteq W$ , and so $\mathop {\mathrm {dim}}\, W\pi _2/(W\pi _2\cap W)=0<m$ . Thus, ${\pi _1,\pi _2\in H(W)}$ .

Case 2. Suppose that $\mathop {\mathrm {dim}}\, Wh^{-1}/(Wh^{-1}\cap W)=m$ and $\mathop {\mathrm {dim}}\, Wg^{-1}/(Wg^{-1}\cap W)<m$ . Then $\vert Q\vert =m$ , $\vert L\vert <m$ , and this inequality implies that $\vert I\vert =m\leq \mathop {\mathrm {codim}} W=\vert K\vert $ , but $\vert P\vert $ is unknown (at most m). Also, $\vert Q\vert +\vert S\vert =\vert I\vert +\vert S\vert =\mathop {\mathrm {codim}} W$ and we may write $\{u_j g^{-1}\}$ , $\{v_rh^{-1}\}$ and $\{d_qh^{-1}\}$ as $\{u_i g^{-1}\}$ , $\{v_ih^{-1}\}$ and $\{d_ih^{-1}\}$ , respectively. Also, let

$$ \begin{align*} \langle a_ig^{-1}\rangle&=\langle w_ig^{-1}\rangle\oplus\langle w_pg^{-1}\rangle,\cr \langle u_kg^{-1}\rangle&=\langle y_ig^{-1}\rangle\oplus\langle y_sg^{-1}\rangle,\cr \langle d_ih^{-1}\rangle&=\langle x_ih^{-1}\rangle\oplus\langle x_\ell h^{-1}\rangle,\cr \langle v_ih^{-1}\rangle&=\langle z_ih^{-1}\rangle\oplus\langle z^*_ih^{-1}\rangle=\langle z'_ih^{-1}\rangle\oplus\langle z"_ih^{-1}\rangle\oplus\langle z"'_\ell h^{-1}\rangle, \end{align*} $$

and define $\pi _1,\pi _2,\pi _3$ in $G(V)$ by

$$ \begin{align*} \pi_1&=\bigg(\begin{array}{@{}cccccc@{}} u_ig^{-1}&w_ig^{-1}&w_p g^{-1}&y_s g^{-1}&y_i g^{-1}&b_\ell g^{-1}\cr z^*_ih^{-1}&z_ih^{-1}&c_p h^{-1}&v_s h^{-1}&x_i h^{-1}&x_\ell h^{-1} \end{array}\bigg),\\ \pi_2&=\bigg(\begin{array}{@{}cccccc@{}} z^*_i&z_i&c_p&v_s&x_i&x_\ell\\ z"_ih^{-1}&d_ih^{-1}&c_ph^{-1}&v_s h^{-1}&z'_ih^{-1}&z"'_\ell h^{-1} \end{array}\bigg),\\ \pi_3&=\bigg(\begin{array}{@{}cccccc@{}} z"_i&d_i&c_p&v_s&z'_i&z"'_\ell\\ u_i&w_i&w_p&y_s&y_i&b_\ell \end{array}\bigg). \end{align*} $$

Clearly, $g=\pi _1 h\pi _2 h\pi _3$ . Also,

$$ \begin{align*} W\pi_1&=\langle z^*_ih^{-1}\rangle\oplus\langle z_ih^{-1}\rangle\oplus\langle c_ph^{-1}\rangle,\cr W\pi_2&=\langle c_ph^{-1}\rangle\oplus\langle z'_ih^{-1}\rangle\oplus\langle z"'_\ell h^{-1}\rangle,\cr W\pi_3&=\langle w_i\rangle\oplus\langle w_p\rangle, \end{align*} $$

and so, for $i=1,2,3$ , $W\pi _i\subseteq W$ and $\mathop {\mathrm {dim}}\, W\pi _i/(W\pi _i\cap W)=0<m$ , that is, $\pi _i\in H(W)$ .

Case 3. Suppose that $\mathop {\mathrm {dim}}\, Wh^{-1}/(Wh^{-1}\cap W)<m$ and $\mathop {\mathrm {dim}}\, Wg^{-1}/(Wg^{-1}\cap W)=m$ . In this event, $\vert I\vert \leq m=\vert J\vert =\vert L\vert \leq \mathop {\mathrm {codim}} W=\vert L\vert +\vert K\vert $ . On the other hand, $\vert Q\vert <m=\vert P\vert =\vert R\vert \leq \mathop {\mathrm {codim}} W=\vert S\vert $ . Thus, we may write $\{b_\ell g^{-1}\}$ , $\{c_ph^{-1}\}$ and $\{v_rh^{-1}\}$ as $\{b_j g^{-1}\}$ , $\{c_jh^{-1}\}$ and $\{v_jh^{-1}\}$ , respectively. Also, write

$$ \begin{align*} \langle b_jg^{-1}\rangle&=\langle w_jg^{-1}\rangle\oplus\langle z_jg^{-1}\rangle\oplus\langle w_qg^{-1}\rangle,\cr \langle v_jh^{-1}\rangle&=\langle x_jh^{-1}\rangle\oplus\langle x_i h^{-1}\rangle,\cr \langle v_sh^{-1}\rangle&=\langle y_jh^{-1}\rangle\oplus\langle y_kh^{-1}\rangle, \end{align*} $$

and define $\pi _1,\pi _2$ in $G(V)$ by

$$ \begin{align*} \pi_1&=\bigg(\begin{array}{@{}cccccc@{}} u_jg^{-1}&a_ig^{-1}&w_j g^{-1}&z_j g^{-1}&u_k g^{-1}&w_q g^{-1}\cr x_jh^{-1}&x_ih^{-1}&c_j h^{-1}&y_j h^{-1}&y_k h^{-1}&d_q h^{-1} \end{array}\bigg),\\ \pi_2&=\bigg(\begin{array}{@{}cccccc@{}} x_j&x_i&c_j&y_j&y_k&d_q\\ u_j&a_i&w_j&z_j&u_k&w_q \end{array}\bigg). \end{align*} $$

Clearly, $g=\pi _1 h\pi _2$ . Also,

$$ \begin{align*} W\pi_1&=\langle x_jh^{-1}\rangle\oplus\langle x_ih^{-1}\rangle,\cr W\pi_2&=\langle w_j\rangle\oplus\langle w_q\rangle, \end{align*} $$

and hence $\mathop {\mathrm {dim}}\, W\pi _1/(W\pi _1\cap W)=\mathop {\mathrm {dim}}\, W\pi _2/(W\pi _2\cap W)=0<m$ . In other words, $\pi _1, \pi _2\in H(W)$ .

Case 4. Suppose that $\mathop {\mathrm {dim}}\, Wh^{-1}/(Wh^{-1}\cap W)=m$ and $\mathop {\mathrm {dim}}\, Wg^{-1}/(Wg^{-1}\cap W)=m$ . Then $\vert I\vert \leq m=\vert L\vert =\vert J\vert \leq \vert L\vert +\vert K\vert =\mathop {\mathrm {codim}} W$ and $\vert P\vert \leq m=\vert Q\vert =\vert R\vert \leq \vert Q\vert +\vert S\vert =\mathop {\mathrm {codim}} W$ . Thus, we may write $\{b_\ell g^{-1}\}$ , $\{d_qh^{-1}\}$ and $\{v_rh^{-1}\}$ as $\{b_j g^{-1}\}$ , $\{d_jh^{-1}\}$ and $\{v_jh^{-1}\}$ , respectively.

If $m<\mathop {\mathrm {codim}} W$ , then $\vert K\vert =\mathop {\mathrm {codim}} W=\vert S\vert $ . Write $\{v_sh^{-1}\}$ as $\{v_kh^{-1}\}$ and

$$ \begin{align*}\langle b_jg^{-1}\rangle=\langle w_jg^{-1}\rangle\oplus\langle w_pg^{-1}\rangle,\quad \langle v_jh^{-1}\rangle=\langle x_jh^{-1}\rangle\oplus\langle x_i h^{-1}\rangle.\end{align*} $$

Now define $\pi _1,\pi _2$ in $G(V)$ by

$$ \begin{align*} \pi_1&=\bigg(\begin{array}{@{}ccccc@{}} u_jg^{-1}&a_ig^{-1}&u_k g^{-1}&w_p g^{-1}&w_j g^{-1}\cr x_jh^{-1}&x_ih^{-1}&v_k h^{-1}&c_p h^{-1}&d_j h^{-1} \end{array}\bigg),\\ \pi_2&=\bigg(\begin{array}{ccccc} x_j&x_i&v_k&c_p&d_j\\ u_j&a_i&u_k&w_p&w_j \end{array}\bigg). \end{align*} $$

If $m=\mathop {\mathrm {codim}} W$ , then $\vert K\vert \leq m$ and $\vert S\vert \leq m$ . Write

$$ \begin{align*} \langle b_jg^{-1}\rangle&=\langle w_pg^{-1}\rangle\oplus\langle w_sg^{-1}\rangle\oplus\langle w_jg^{-1}\rangle,\cr \langle v_jh^{-1}\rangle&=\langle x_jh^{-1}\rangle\oplus\langle x_i h^{-1}\rangle\oplus\langle x_k h^{-1}\rangle, \end{align*} $$

and define $\pi _1,\pi _2$ in $G(V)$ by

$$ \begin{align*} \pi_1&=\bigg(\begin{array}{@{}cccccc@{}} u_jg^{-1}&a_ig^{-1}&u_k g^{-1}&w_p g^{-1}&w_s g^{-1}&w_j g^{-1}\cr x_jh^{-1}&x_ih^{-1}&x_k h^{-1}&c_p h^{-1}&v_s h^{-1}&d_j h^{-1} \end{array}\bigg),\\ \pi_2&=\bigg(\begin{array}{@{}cccccc@{}} x_j&x_i&x_k&c_p&v_s&d_j\\ u_j&a_i&u_k&w_p&w_s&w_j \end{array}\bigg). \end{align*} $$

It is easy to see that, in both cases, $W\pi _1,W\pi _2\subseteq W$ , and so $\pi _1,\pi _2\in H(W)$ . Moreover, $g=\pi _1 h\pi _2$ .

Proof. By Proposition 4.1, if $\aleph _0\leq \mathop {\mathrm {dim}}\, W\leq \mathop {\mathrm {codim}} W$ , then $H(W)$ is a maximal subsemigroup of $G(V)$ . Now assume that $\mathop {\mathrm {dim}}\, W=1$ and let $W=\langle w\rangle $ , with $w\not =0$ . Since $\mathop {\mathrm {dim}}\, W\pi =1$ for each $\pi \in G(V)$ , it follows that $\mathop {\mathrm {dim}}\, W\pi /(W\pi \cap W)<1$ if and only if $W\pi =W$ , and hence

$$ \begin{align*}H(W)=\{\pi\in G(V): w\pi=k\pi\text{\ for some } k\in F\setminus\{0\}\}.\end{align*} $$

It is easy to see that $H(W)$ is a subsemigroup of $G(V)$ that is a group. Given $h,g\in G(V)\setminus H(W)$ ,

$$ \begin{align*}Wh\cap W=\{0\}=Wg\cap W.\end{align*} $$

Therefore, there exist nonzero $u,v,a,b\notin \langle w\rangle $ such that $wh=u$ , $wg=v$ , $ah=w$ and $bg=w$ . Write $V=\langle w\rangle \oplus \langle a\rangle \oplus \langle a_i\rangle =\langle w\rangle \oplus \langle b\rangle \oplus \langle b_i\rangle $ , and define $\pi _1,\pi _2\in G(V)$ by

$$ \begin{align*}\pi_1=\bigg(\begin{array}{@{}ccc@{}} w&b&b_i\\ w&a&a_i \end{array}\bigg),\quad \pi_2=\bigg(\begin{array}{@{}ccc@{}} w&u&a_ih\\ w&v&b_ig \end{array}\bigg).\end{align*} $$

Clearly, $\pi _1,\pi _2\in H(W)$ , since $w\pi _i=w$ for $i=1,2$ . Also,

$$ \begin{align*}\pi_1 h\pi_2=\bigg(\begin{array}{@{}ccc@{}} w&b&b_i\\ v&w&b_ig \end{array}\bigg)=g.\end{align*} $$

Thus, if $\mathop {\mathrm {dim}}\, W=1$ , then $H(W)$ is a maximal subsemigroup of $G(V)$ .

Conversely, suppose that $\mathop {\mathrm {dim}}\, W=m$ with $m\in \mathbb {N}\setminus \{1\}$ , and write $W=\langle w_1,\dots , w_m\rangle $ . Since V is infinite-dimensional, we may write $V=\langle w_1,\dots , w_m\rangle \oplus \langle u_1,\dots , u_m\rangle \oplus \langle v_i\rangle $ , where $\vert I\vert =\mathop {\mathrm {dim}}\, V$ . Now define $\alpha ,\beta \in G(V)$ by

$$ \begin{align*}\alpha=\bigg(\begin{array}{@{}ccccccccc@{}}w_1&w_2&\dots&w_m&u_1&u_2&\dots&u_m&v_i\cr w_1&u_2&\dots&u_m&u_1&w_2&\dots&w_m&v_i \end{array}\bigg),\end{align*} $$

$$ \begin{align*}\beta=\bigg(\begin{array}{@{}ccccccccc@{}}w_1&w_2&\dots&w_m&u_1&u_2&\dots&u_m&v_i\cr u_1&w_2&\dots&w_m&w_1&u_2&\dots&u_m&v_i \end{array}\bigg).\end{align*} $$

Clearly, $\mathop {\mathrm {dim}}\, W\alpha /(W\alpha \cap W)=\mathop {\mathrm {dim}}\,\langle u_2,\dots ,u_m\rangle =m-1$ and $\mathop {\mathrm {dim}}\, W\beta /(W\beta \cap W)=\mathop {\mathrm {dim}}\,\langle u_1\rangle =1$ , so $\alpha ,\beta \in H(W)$ . But

$$ \begin{align*}\alpha\beta=\bigg(\begin{array}{@{}ccccccccc@{}}w_1&w_2&\dots&w_m&u_1&u_2&\dots&u_m&v_i\cr u_1&u_2&\dots&u_m&w_1&w_2&\dots&w_m&v_i \end{array}\bigg),\end{align*} $$

and hence $\mathop {\mathrm {dim}}\, W\alpha \beta /(W\alpha \beta \cap W)=\mathop {\mathrm {dim}}\,\langle u_1,u_2,\dots ,u_m\rangle =m$ . Therefore, $\alpha \beta \notin H(W)$ and $H(W)$ is not a semigroup. Next, assume that W is infinite-dimensional and $\mathop {\mathrm {dim}}\, W>\mathop {\mathrm {codim}} W$ . Given that $\pi \in G(V)$ , $\mathop {\mathrm {dim}}\, W\pi /(W\pi \cap W)\leq \mathop {\mathrm {codim}} W<\mathop {\mathrm {dim}}\, W$ . Thus, ${H(W)=G(V)}$ . In other words, we have just proved that $H(W)$ is not a maximal subsemigroup of $G(V)$ when $\mathop {\mathrm {dim}}\, W\in \mathbb {N}\setminus \{1\}$ or W is infinite-dimensional but $\mathop {\mathrm {dim}}\, W>\mathop {\mathrm {codim}} W$ .