Proof. By Proposition 2·5, P can be transformed into the (n, 1) cable $C_{n,1}$ by a sequence of m crossing changes for some $m \in \mathbb{N}$ . We can realize the ith crossing change by doing $\epsilon_i$ -framed surgery (for $\epsilon_i = \pm 1$ ) along a small curve $L_i$ linking P(U) geometrically twice and algebraically zero times, while linking $\eta$ zero times. We refer to the resulting link as $P_C \cup \eta_C \cup \bigcup_{i=1}^m L_i$ . Note that blowing down the $L_i$ curves transforms $P_C \cup \eta_C$ to $P \cup \eta$ , while ignoring the $L_i$ curves we see $P_C \cup \eta_C= C_{n,1}$ .

Each framed curve $L_i$ lifts to a 2-component framed link $L_i^1 \cup L_i^2$ in $\Sigma_2(C_{n,1}(U))=S^3$ , and the curve $\eta_C$ lifts to the 2-component link $\eta_C^1 \cup \eta_C^2$ . Doing surgery along $L= \bigcup_{i=1}^m (L_i^1 \cup L_i^2)$ according to the induced framing converts $(\Sigma_2(C_{n,1}(U)), \eta_C^1 \cup \eta_C^2)$ to $(\Sigma_2(P(U)), \eta^1 \cup \eta^2). $

Let A be the linking-framing matrix for L with respect to the ordering $L_1^1, \ldots, L_m^1, L_1^2, \ldots L_m^2$ . Observe that since $\text{lk}(t \gamma_1, t \gamma_2)= \text{lk}(\gamma_1, \gamma_2)$ for any two curves $\gamma_1, \gamma_2$ , for any $1 \leq i, j \leq m$ we have

\begin{align*}A_{i, j+m}&=\text{lk}(L_i^1, L_j^2)= \text{lk}(L_i^2, L_j^1)= A_{i+m,j} \\A_{i+m, j+m}&= \text{lk}(L_i^2, L_j^2)= \text{lk}(L_i^1, L_j^1)= A_{i,j}.\end{align*}

That is, A is a $2 \times 2$ block circulant matrix with size $m \times m$ blocks.

Now define

\begin{align*} x&=(\text{lk}(\eta_C^1, L_1^1), \ldots, \text{lk}(\eta_C^1, L_m^1), \text{lk}(\eta_C^1, L_1^2), \ldots, \text{lk}(\eta_C^1, L_m^2))\\ y&=(\text{lk}(\eta_C^2, L_1^1), \ldots, \text{lk}(\eta_C^2, L_m^1), \text{lk}(\eta_C^2, L_1^2), \ldots, \text{lk}(\eta_C^2, L_m^2)).\end{align*}

We have that

\[\text{lk}(\eta_C^2, L_i^2)= \text{lk}(t \eta_C^1, t L_i^1)=\text{lk}(\eta_C^1, L_i^1)\]

and

\[\text{lk}(\eta_C^1, L_i^2)= \text{lk}(t \eta_C^2, t L_i^1)= \text{lk}(\eta_C^2, L_i^1)\]

for all $i=1, \ldots, m$ .

Proof of claim. Let $F_i$ be a surface in $S^3$ with boundary $\partial F_i = L_i$ . Observe that $0= \text{lk}(\eta_C, L_i)= F_i \cdot \eta_C.$ Let $\widetilde{F_i}$ denote the pre-image of $F_i$ in $\Sigma_2(C_{n,1}(U))=S^3$ . Then $\widetilde{F_i}$ is a surface with boundary $\partial \widetilde{F_i}= L_i^1 \cup L_i^2$ . Moreover,

\begin{align*} \widetilde{F_i} \cdot (\eta_C^1 \cup \eta_C^2)= 2(F_i \cdot \eta_C)=0.\end{align*}

Let $G_i$ be a surface in $\Sigma_2(C_{n,1}(U))=S^3$ with $\partial G_i= -L_i^1$ . Then we can compute

\begin{align*}\text{lk}(\eta_C^1, L_i^2) + \text{lk}(\eta_C^2, L_i^2)&= (\widetilde{F_i} \cup G_i) \cdot (\eta_C^1 \cup \eta_C^2)\\&= G_i \cdot (\eta_C^1 \cup \eta_C^2)\\&= (G_i \cdot \eta_C^1)+ (G_i \cdot \eta_C^2)= - \text{lk}(\eta_C^1, L_i^1)- \text{lk}(\eta_C^2, L_i^1).\end{align*}

We can now apply the previous observations that $\text{lk}(\eta_C^2, L_i^1)= \text{lk}(\eta_C^1, L_i^2)$ and $\text{lk}(\eta_C^2, L_i^2)= \text{lk}(\eta_C^1, L_i^1)$ to finish the proof of our claim.

We therefore have that $x=(v, -v)$ and $y=({-}v, v)$ for some $v \in \mathbb{Z}^m$ . By Theorem 3·1, we know that

\begin{align*}\text{lk}_{\Sigma_2(P(U))}(\eta_1,\eta_2)&= \text{lk}_{S^3}(\eta_C^1, \eta_C^2) - x^TA^{-1}y= k-x^TA^{-1}y,\end{align*}

where we use Lemma 2·3 to compute $\text{lk}(\eta_C^1, \eta_C^2)=k$ .

It now only remains to show that $x^TA^{-1}y={2a}/{|H_1(\Sigma_2(P(U)))|}$ for some $a \in \mathbb{Z}$ . Since A is a block circulant matrix, Proposition 3·3 implies that $A^{-1}$ is also block circulant, and hence can be written $A^{-1}= \begin{bmatrix} F & G \\ G & F\end{bmatrix}$ for some $F, G \in M_{m \times m} (\mathbb{Q})$ . We obtain

\begin{align*}x^T A^{-1} y= \begin{bmatrix} v^T & -v^T \end{bmatrix} \begin{bmatrix} F & G \\ G & F \end{bmatrix} \begin{bmatrix} -v \\v \end{bmatrix}= 2v^T(G-F)v.\end{align*}

The adjoint formula for a matrix inverse, applied to A, implies that the entries of F and G are all of the form ${a}/{\det(A)}$ for some $a \in \mathbb{Z}$ , and so we obtain our desired result, since $|\det(A)|=|H_1(\Sigma_2(P(U)))|$ .

Proof of Theorem 1·1. for $n \equiv 2$ mod 4. Let $P=P(U) \cup \eta$ be a pattern whose winding number is even but not divisible by 4. Then P does not induce a homomorphism of the concordance group.

Proof. Write $n=2k$ for an odd integer k. By Lemma 3·4, we know that there is $a \in \mathbb{Z}$ such that

\[\text{lk}_{\Sigma_2(P(U))}(\eta_1, \eta_2)= k +\frac{2a}{|H_1(\Sigma_2(P(U)))|}= \frac{k |H_1(\Sigma_2(P(U)))|+ 2a}{|H_1(\Sigma_2(P(U)))|} \neq 0,\]

since k and $|H_1(\Sigma_2(P(U)))|$ are both odd. Theorem 1·3 with $m=2$ then gives the desired result.

Proof. Let $\ell=|H_1(\Sigma_4(P(U)))|$ . Note that as observed by Fox [ Reference Fox8 ] we have that

\begin{align*}|H_1(\Sigma_4(P(U)))|&= |\Delta_{P(U)}({-}1)\Delta_{P(U)}(i)\Delta_{P(U)}({-}i)|\\&= |H_1(\Sigma_2(P(U)))| \cdot |\Delta_{P(U)}(i)\Delta_{P(U)}({-}i)|,\end{align*}

where as usual $\Delta_{P(U)}(t)$ denotes the Alexander polynomial of P(U). Therefore, every 1-cycle a in $\Sigma_2(P(U))$ has the property that $\ell a$ bounds a 2-cycle.

Let F be a 2-cycle in $\Sigma_2(P(U))$ such that $\partial F= \ell \eta_2^2$ , so $\text{lk}_2(\eta_2^1, \eta_2^2)= ({1}/{\ell})(\eta_2^1 \cdot F)$ . Define $\widetilde{F}= \pi^{-1}(F)\subset \Sigma_4(P(U))$ , and observe that $\partial \widetilde{F}= \ell(\eta_4^2 \cup \eta_4^4)$ . Let G be a 2-cycle in $\Sigma_4(P(U))$ such that $\partial G= -\ell \eta_4^4$ . Observe that for $j \in \{1,3\}$ we have that

\begin{align*} \text{lk}_4(\eta_4^j, \eta_4^2)&= \frac{1}{\ell}(\eta_4^j \cdot (\widetilde{F} \cup G))= \frac{1}{\ell}(\eta_4^j \cdot \widetilde{F})+ \frac{1}{\ell}(\eta_4^j \cdot G)= \frac{1}{\ell}(\eta_4^j \cdot \widetilde{F})- \text{lk}_4(\eta_4^j, \eta_4^4).\end{align*}

It follows that

\begin{align*} 4\, \text{lk}_4(\eta_4^1, \eta_4^2)&=\text{lk}_4(\eta_4^1, \eta_4^2)+ \text{lk}_4(\eta_4^1, \eta_4^4)+ \text{lk}_4(\eta_4^3, \eta_4^2)+ \text{lk}_4(\eta_4^3, \eta_4^4)\\ &= \frac{1}{\ell}((\eta_4^1 \cup \eta_4^3) \cdot \widetilde{F})\\ &= \frac{1}{\ell}(\pi^{-1}(\eta_2^1) \cdot \pi^{-1}(F))\\ &=\frac{2}{\ell} (\eta_2^1 \cdot F)\\ &=2\, \text{lk}_2(\eta_2^1, \eta_2^2),\end{align*}

where the second-to-last equality follows from the fact that $\pi \colon \Sigma_4(P(U)) \to \Sigma_2(P(U))$ is 2-to-1 everywhere besides the branch set P(U).

Proof of Lemma 3·6. Our strategy imitates that of the proof of Lemma 3·4. Let $L_1 \cup \ldots \cup L_m$ be a framed link of unknots, surgery along which realises the crossing changes of P(U) that transform $P=P(U) \cup \eta$ to the (n, 1)-cable pattern $C_{n,1}= P_C \cup \eta_C$ . Note that

\[\text{lk}(L_i, P(U))=\text{lk}(L_i, \eta)=\text{lk}(L_i, L_j)=0 \]

for all $1 \leq i \neq j \leq m$ .

For each $i=1, \ldots, m$ , pick a preferred lift $L_i^1$ of $L_i$ to $\Sigma_4(C_{n,1}(U))=S^3$ , and let $L_i^2=tL_i^1$ , $L_i^3= t^2 L_i^1$ , and $L_i^4= t^3 L_i^1$ . Similarly, let $\eta_C^1$ be a preferred lift of $\eta_C$ to $\Sigma_4(C_{n,1}(U))=S^3$ , and let $\eta_C^2=t\eta_C^1$ , $\eta_C^3= t^2 \eta_C^1$ , and $\eta_C^4= t^3 \eta_C^1$ . We have that $(\Sigma_4(P(U)), \bigcup_{i=1}^4 \eta^i)$ is obtained from $(\Sigma_4(C_{n,1}(U)), \bigcup_{i=1}^4 \eta_C^i)$ by performing appropriately framed surgery along

\[L= L_1^1 \cup \cdots L_m^1 \cup L_1^2 \cup \cdots L_m^2 \cup L_1^3 \cup \ldots \cup L_m^3 \cup L_1^4 \cup \ldots \cup L_m^4. \]

Now let A be the linking-framing matrix of L and let x (respectively y) be the 4m-component vector whose ith entry is the linking of $\eta_C^1$ (respectively $\eta_C^3$ ) with the ith component of L. Theorem 3·1 tells us that

\[\text{lk}_{\Sigma_4(P(U))}(\eta^1, \eta^3) =\text{lk}(\eta_C^1, \eta_C^3)-x^TA^{-1}y= k-x^TA^{-1}y, \]

where for the last equality we use Lemma 2·3.

Proof of claim. Let $F_i$ be a surface in $S^3$ with boundary $\partial F=L_i$ , and observe that $0=\text{lk}(\eta, L_i)= F \cdot \eta_C$ . Taking the pre-image of F in $\Sigma_4(C_{n,1}(U))=S^3$ , we obtain $\widetilde{F}$ , a surface with boundary $L_i^1 \cup L_i^2 \cup L_i^3 \cup L_i^4$ and with the property that

\[\widetilde{F} \cdot (\eta_C^1 \cup \eta_C^2 \cup \eta_C^3 \cup \eta_C^4)= 4(F \cdot \eta_C)=0.\]

Let $G_1$ , $G_2$ , and $G_3$ be surfaces in $\Sigma_4(C_{n,1}(U))=S^3$ with $\partial G_j=-L_i^j$ , and observe that

\begin{align*}\sum_{k=1}^4 \text{lk}(\eta_C^k, L_i^4)&=(\widetilde{F} \cup G_1 \cup G_2 \cup G_3) \cdot (\eta_C^1 \cup \eta_C^2 \cup \eta_C^3 \cup \eta_C^4) \\&=( G_1 \cup G_2 \cup G_3) \cdot (\eta_C^1 \cup \eta_C^2 \cup \eta_C^3 \cup \eta_C^4)= \sum_{j=1}^3 \sum_{k=1}^4 -\text{lk} (\eta_C^k, L_i^j).\end{align*}

Rewriting, we obtain that

\begin{align*} 0=\; &(\text{lk}(\eta_C^1, L_i^1)+ \text{lk}(\eta_C^1, L_i^2)+ \text{lk}(\eta_C^1, L_i^3)+ \text{lk}(\eta_C^1, L_i^4)) \\ &+(\text{lk}(\eta_C^2, L_i^2)+ \text{lk}(\eta_C^2, L_i^3)+ \text{lk}(\eta_C^2, L_i^4)+\text{lk}(\eta_C^2, L_i^1)) \\ & +(\text{lk}(\eta_C^3, L_i^3)+ \text{lk}(\eta_C^3, L_i^4)+\text{lk}(\eta_C^3, L_i^1)+\text{lk}(\eta_C^3, L_i^2)) \\ &+ (\text{lk}(\eta_C^4, L_i^4)+\text{lk}(\eta_C^4, L_i^1)+\text{lk}(\eta_C^4, L_i^2)+\text{lk}(\eta_C^4, L_i^3)).\end{align*}

Now observe that each 4-term parenthetical sum is equal, since $\text{lk}(\eta_C^j, L_i^k)$ depends only on $1 \leq i \leq m$ and the value of $k-j$ mod 4. So we obtain our desired claim.

We therefore have that $x=(u,v,w,-u-v-w)$ , where $u_i= \text{lk}(\eta_C^1, L_i^1)$ , $v_i=\text{lk}(\eta_C^1, L_i^2)$ , and $w_i= \text{lk}(\eta_C^1, L_i^3)$ for $i=1, \ldots, m$ . Furthermore, since x records the linking of $\eta_C^1$ with the components of L and y records the linking of $\eta_C^3=t^2 \eta_C^1$ with the components of L, we have that $y=(w, -u-v-w, u, v)$ .

We can now compute

\begin{align*}(*)&=x^T A^{-1} y\\ &=\begin{bmatrix} u^T & v^T & w^T & -u^T-v^T-w^T \end{bmatrix}\begin{bmatrix} Q&R&S& R^{T} \\R^{T}&Q&R&S \\ S&R^{T}&Q&R\\ R&S&R^{T}&Q\end{bmatrix}\begin{bmatrix} w\\ -u-v-w \\ u \\ v\end{bmatrix}\\&= u^T Q w + v^T Q ({-}u-v-w)+ w^T Q u + ({-}u^T-v^T-w^T) Q v \\& \quad + u^T R ({-}u-v-w) + v^T R u + w^T R v +({-}u^T-v^T-w^T)Rw\\ & \qquad +u^T S u+v^T S v+ w^T Sw+ ({-}u^T-v^T-w^T)S({-}u-v-w)\\ & \quad \qquad + u^T R^{T} v+v^T R^{T} w+ w^T R^{T} ({-}u-v-w)+({-}u^T-v^T-w^T)R^{T}u \\&= 2(u^T Q w - u^T Q v - v^T Q v - v^T Q w) \\& \quad + 2({-}u^T R u - u^T R v - 2 u^T R w - v^T R w - w^ T R w + v^T R u + w^T R v ) \\& \qquad +2( u^T S u + u^ T S v+ u^T S w+ v^T Sv + v^T S w+ w ^T S w),\end{align*}

where to obtain the final equality we repeatedly use that $Q^T=Q$ and $S^T=S$ . The entries of u, v, and w are integers and the entries of Q, R, and S are all of the form ${a}/{\det(A)}$ for $a \in \mathbb{Z}$ , by the adjoint formula for a matrix inverse. Therefore, since $|\det(A)|=|H_1(\Sigma_4(P(U)))|$ , we have our desired result.

Proof of Theorem 1·1 for $n \equiv 4$ mod 8. Let P be a pattern with winding number n equivalent to 4 mod 8. Then P does not induce a homomorphism of the concordance group.

Proof. Write $n=4k$ for some odd k. If $\text{lk}_{\Sigma_2(P(U))}(\eta_2, t \eta_2) \neq 0$ , then by applying Theorem 1·3 with $m=2$ we are done. So assume that $\text{lk}_{\Sigma_2(P(U))}(\eta_2, t \eta_2) = 0$ . By Proposition 3·5, this implies that $\text{lk}_{\Sigma_4(P(U))}(\eta_4, t \eta_4) = 0$ as well. However, by Lemma 3·6, we know that there is $a \in \mathbb{Z}$ such that

\[\text{lk}_{\Sigma_4(P(U))}(\eta_4, t^2 \eta_4)=k+ \frac{2a}{|H_1(\Sigma_4(P(U)))|} \neq 0,\]

since $|H_1(\Sigma_4(P(U)))|$ is odd. Theorem 1·3 with $m=4$ then gives the desired result.