Tag Archives: UCL代写

数学方法2|MA30059/MA40059/MA50059 Mathematical Methods 2代写

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In some sense, the unifying theme of the unit is partial differential equations (we shall see that
although variational principles such as those mentioned in Section 1.1.3 are not differential equations, they are intimately linked to them). You have met several PDEs over the last few years, but
we shall (hopefully) study PDEs in a different manner to how you may have done so up to this
point.

这是一份UCL伦敦大学学院MA30059/MA40059/MA50059 作业代写的成功案

数学方法2|MA30059/MA40059/MA50059 Mathematical Methods 2代写

Fix $\mathbf{x} \in \mathbb{R}^{m}$.
(i) A distribution $T: C_{c}^{\infty}\left(\mathbb{R}^{m}\right) \rightarrow \mathbb{R}$ is called a fundamental solution of Laplace’s equation with respect to the point $\mathbf{x} \in \mathbb{R}^{m}$ if
$$
\Delta T=\delta_{\mathrm{x}},
$$
that is, equality as distributions. Here $\delta_{\mathbf{x}}$ is the shifted Dirac Delta distribution defined by $\delta_{\mathbf{x}}(\phi)=\phi(\mathbf{x})$ for all $\phi \in C_{c}^{\infty}\left(\mathbb{R}^{m}\right)$.
(ii) Let $\phi \in C_{c}^{\infty}\left(\mathbb{R}^{m}\right)$. As $\phi$ is compactly supported, there exists $\rho>0$ such that $|\mathbf{x}|<\rho$ and $\phi(\mathbf{y})=0$ for all $\mathbf{y} \in \mathbb{R}^{m}$ with $|\mathbf{y}| \geq \rho$. Choose $\Omega:=B(\mathbf{0}, \rho+1)$, so that
$\phi, \frac{\partial \phi}{\partial n}=0 \quad$ on $\partial \Omega$,
and $\mathbf{x} \in \Omega$. Since evidently $\phi \in C^{2}(\bar{\Omega})$, Green’s Integral Representation reduces to
$$
\int_{\mathbb{R}^{m}} N_{\mathbf{x}}(\mathbf{y}) \Delta \phi(\mathbf{y}) \mathrm{d} \mathbf{y}=\phi(\mathbf{x}) .
$$
As $\phi$ was arbitrary, in terms of distributions, this reads
$$
\Delta T_{N_{\mathrm{x}}}=\delta_{\mathrm{x}}
$$
where $T_{N_{\mathbf{x}}}$ is the distribution corresponding to $N_{\mathbf{x}}$, as required.

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MA30059/MA40059/MA50059 COURSE NOTES :

We need to find a $v$ satisfying $(1)-(3)$ above. Then we set $G(\mathbf{x}, \mathbf{y}):=N_{\mathbf{x}}(\mathbf{y})+v(\mathbf{x}, \mathbf{y})$ If $\mathbf{x}=0$, then (3) becomes
$$
v(\mathbf{0}, \mathbf{y})=\frac{1}{4 \pi} \quad \forall y \in \partial \Omega_{0},
$$
so we can just choose
$$
v(\mathbf{0}, \mathbf{y})=\frac{1}{4 \pi} \quad \forall y \in \bar{\Omega}{0}, $$ which satisfies Laplace’s equation in $\Omega$ (and is in $C^{2}(\bar{\Omega})$ ) since it is constant. We now consider the case $\mathbf{x} \neq 0$. In light of the key property of $\mathbf{r}(\mathbf{x})$, namely, $$ |\mathbf{x}| \cdot|\mathbf{y}-\mathbf{r}(\mathbf{x})|=|\mathbf{y}-\mathbf{x}| \quad \forall \mathbf{x} \in \Omega{0} \backslash{\mathbf{0}}, \forall \mathbf{y} \in \partial \Omega_{0},
$$
the requirement (3) becomes
$$
v(\mathbf{x}, \mathbf{y})=\frac{1}{4 \pi} \frac{1}{|\mathbf{x}-\mathbf{y}|}=\frac{1}{4 \pi} \frac{1}{|\mathbf{x}| \cdot|\mathbf{y}-\mathbf{r}(\mathbf{x})|} \quad \forall \mathbf{y} \in \partial \Omega_{0}
$$
Thus, we let $v$ equal the function on the right hand side of the above for all $\mathbf{y} \in \Omega_{0}$, which is well defined since $\mathbf{r}(\mathbf{x})-\mathbf{y} \neq \mathbf{0}$ for all $\mathbf{y} \in \bar{\Omega}{0}$ and $\mathbf{x} \in \Omega{0} \backslash{\mathbf{0}}$. Furthermore, since
$$
v(\mathbf{x}, \mathbf{y})=-\frac{1}{|\mathbf{x}|} N_{\mathbf{r}(\mathbf{x})}(\mathbf{y}) \quad \forall \mathbf{y} \in \bar{\Omega}_{0},
$$


优化算法|STAT0025 Optimisation Algorithms代写

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This module aims to provide an introduction to the ideas underlying the optimal choice of component variables, possibly subject to constraints, that maximise (or minimise) an objective function. The algorithms described are both mathematically interesting and applicable to a wide variety of complex real-life situations.

这是一份UCL伦敦大学学院STAT0025作业代写的成功案

优化算法|STAT0025 Optimisation Algorithms代写
问题 1.

there is a flow of diffeomorphisms $x \rightarrow \xi_{s, t}(x)$ associated with this system, together with their non-singular Jacobians $D_{s, t}$.

In the terminology of Harrison and Pliska [150], the return process $Y_{t}=\left(Y_{t}^{1}, \ldots, Y_{t}^{d}\right)$ is here given by
$$
d Y_{t}=(\mu-\rho) d t+\Lambda d W_{t}
$$

证明 .

can be removed by applying the Girsanov change of measure. Write
$$
\eta(t, S)=\Lambda(t, S)^{-1}(\mu(t, S)-\rho),
$$
and define the martingale $M$ by
$$
M_{t}=1-\int_{0}^{t} M_{s} \eta\left(s, S_{s}\right)^{\prime} d W_{s}
$$

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STAT0025 COURSE NOTES :

Consider a standard Brownian motion $\left(B_{t}\right){t \geq 0}$ defined on $(\Omega, \mathcal{F}, P)$. The filtration $\left(\mathcal{F}{t}\right)$ is that generated by $B$. Recall that $B_{t}$ is normally distributed, and
$$
P\left(B_{t}<x\right)=\Phi\left(\frac{x}{\sqrt{t}}\right)
$$
Therefore
$$
P\left(B_{t} \geq x\right)=1-\Phi\left(\frac{x}{\sqrt{t}}\right)=\Phi\left(-\frac{x}{\sqrt{t}}\right)
$$
For a real-valued process $X$, we shall write
$$
M_{t}^{X}=\max {0 \leq s \leq t} X{s}, \quad m_{t}^{X}=\min {0 \leq s \leq t} X{s}
$$


数值方法|MATH0033 Numerical Methods代写

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Many phenomena in engineering and the physical and biological sciences can be described using mathematical models. Frequently the resulting models cannot be solved analytically, in which case a common approach is to use a numerical method to find an approximate solution. The aim of this course is to introduce the basic ideas underpinning computational mathematics, study a series of numerical methods to solve different problems, and carry out a rigorous mathematical analysis of their accuracy and stability.

这是一份UCL伦敦大学学院MATH0033作业代写的成功案

数值方法|MATH0033 Numerical Methods代写
问题 1.

Step 1 . Evaluate the function
$$
\boldsymbol{F}\left(\boldsymbol{p}{k}\right)=\left[\begin{array}{l} f{1}\left(p_{k}, q_{k}\right) \
f_{2}\left(p_{k}, q_{k}\right)
\end{array}\right]
$$
Step 2. Evaluate the Jacobian
$$
\boldsymbol{J}\left(\boldsymbol{P}{k}\right)=\left[\begin{array}{ll} \frac{\partial}{\partial x} f{1}\left(p_{k}, q_{k}\right) & \frac{\partial}{\partial y} f_{\mathrm{I}}\left(p_{k}, q_{k}\right) \
\frac{\partial}{\partial x} f_{2}\left(p_{k}, q_{k}\right) & \frac{\partial}{\partial y} f_{2}\left(p_{k}, q_{k}\right)
\end{array}\right]
$$

证明 .

Step 3. Solve the linear system
$$
J\left(P_{k}\right) \Delta P=-F\left(P_{k}\right) \text { for } \Delta P
$$
Step 4. Compute the next point:
$$
P_{k+1}=P_{k}+\Delta P .
$$

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MATH0033 COURSE NOTES :


$$
f(x)=P_{N}(x)+E_{N}(x),
$$
where $P_{N}(x)$ is a polynomial that can be used to approximate $f(x)$ :
$$
f(x) \approx P_{N}(x)=\sum_{k=0}^{N} \frac{f^{(k)}\left(x_{0}\right)}{k !}\left(x-x_{0}\right)^{k} .
$$
The error term $E_{N}(x)$ has the form
$$
E_{N}(x)=\frac{f^{(N+1)}(c)}{(N+1) !}\left(x-x_{0}\right)^{N+1}
$$
for some value $c=c(x)$ that lies between $x$ and $x_{0}$.


图论|MATH0029 Graph Theory代写

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The course aims to introduce students to discrete mathematics, a fundamental part of mathematics with many applications in computer science and related areas. The course provides an introduction to graph theory and combinatorics, the two cornerstones of discrete mathematics. The course will be offered to third or fourth year students taking Mathematics degrees, and might also be suitable for students from other departments. There will be an emphasis on extremal results and a variety of methods.

这是一份UCL伦敦大学学院MATH0029作业代写的成功案

图论|MATH0029 Graph Theory代写
问题 1.

$$
(1-\epsilon) p q n=(1-\epsilon) c n \leq \sum_{i=1}^{r}\left|X_{i}\right|=r \ell \leq q \ell
$$
whence $(1-\epsilon) n \leq \epsilon \ell$ and hence $j<n \leq 2 \epsilon \ell$. Because $\left|Y_{s}\right| \geq 4^{-d_{j, k} \ell} \geq 4^{-\Delta} \ell$ and $\left(\Delta^{2}+2\right) \epsilon<4^{-\Delta}$,

证明 .

$$
\left|Y_{s}\right|-\Delta^{2} \epsilon \ell-j>4^{-\Delta} \ell-\Delta^{2} \epsilon \ell-2 \epsilon \ell=\left(4^{-\Delta}-\left(\Delta^{2}+2\right) \epsilon\right) \ell>0
$$
Also, because $\epsilon<\frac{1}{4}$ and $\left|Y_{t}\right| \geq 4^{-d_{j, k} \ell}$,
$$
\left(\frac{1}{2}-\epsilon\right)\left|Y_{t}\right| \geq \frac{1}{4}\left(4^{-d_{j, k}} \ell\right)=4^{-d_{j, k}-1} \ell=4^{-d_{j+1, k} \ell}
$$

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MATH0029 COURSE NOTES :

For a pair ${X, Y}$ of disjoint sets of vertices of a graph $G$, we define its index of regularity by:
$$
\rho(X, Y):=|X | Y|(d(X, Y))^{2}
$$
This index is nonnegative. We extend it to a family $\mathcal{P}$ of disjoint subsets of $V$ by setting:
$$
\rho(\mathcal{P}):=\sum_{X, Y \in \mathcal{P}} \rho(X, Y)
$$
In the case where $\mathcal{P}$ is a partition of $V$, we have:
$$
\rho(\mathcal{P})=\sum_{\substack{X \in Y \in \mathcal{P} \ X \neq Y}}|X | Y|(d(X, Y))^{2} \leq \sum_{\substack{X, Y \in \mathcal{P} \ X \neq Y}}|X||Y|<\frac{n^{2}}{2}
$$


金融数学|MATH0031 Financial Mathematics代写

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This is a first course at the advanced undergraduate level in mathematical finance; centring on the mathematics of financial derivatives which relies on both probability theory and PDE based approaches. It assumes no prior knowledge of finance. The module begins with an introduction to the type of language and terminology used in the investment banking arena, followed by the essential elements of probability theory and stochastic calculus required for the pricing of options later in the course.

这是一份UCL伦敦大学学院MATH0031作业代写的成功案

金融数学|MATH0031 Financial Mathematics代写
问题 1.

Under the equivalent martingale measure $\mathcal{Q}$, the one-factor Vasicek (1FV) model is given by
$$
d r_{t}=\chi_{r}\left(\bar{r}-r_{t}\right) d t+\sigma_{r} d W_{r, t}^{\mathcal{Q}}
$$

证明 .

Under this specification bond prices are defined by $D(t, T)=\exp (A(t, T)-$ $\left.B(t, T) r_{t}\right)$, where $B(t, T) \equiv \frac{1-e^{-x_{f} t}}{x_{t}}$,
$$
A(t, T) \equiv \frac{(B(t, T)-\tau)\left(x_{r}^{2} \bar{r}-\frac{\sigma_{r}^{2}}{2}\right)}{x_{r}^{2}}-\frac{\sigma_{r}^{2} B^{2}(t, T)}{4 \chi_{r}}
$$
and, for notational convenience, $\tau \equiv T-t$.
Let $\tilde{X}{t} \equiv\left[y{l, L}(t) r_{t}\right]^{\prime}$ and $\tau_{l} \equiv T_{l}$, the term-to-maturity of the swaptions contract to be priced. The associated transform of the state vector $\tilde{X}{t}$ is given by $$ \psi^{\mathcal{Q}{l+\perp L}}\left(\tilde{u} \equiv(\tilde{u} 0)^{\prime}, \tilde{X}{t}, 0, T{l}\right)=\exp \left[\alpha\left(\tau_{l}\right)+\tilde{u} y_{l, L}(0)\right]
$$

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MATH0031 COURSE NOTES :


The one-factor generalized Vasicek (1FGV) model defines the short rate $r_{t}=$ $\delta+x_{1, t}$, where $\delta \in \mathbb{R}$ is constant, and
$$
d x_{1, t}=-x_{1} x_{1, t} d t+\sigma_{1} d W_{1, t^{*}}^{\mathcal{Q}}
$$
Bond prices are given by $D(t, T)=\exp \left(A(t, T)+B_{x_{1}}(t, T) x_{1, t}\right)$, where, in general, $B_{x}(t, T) \equiv \frac{1-e^{-x t}}{x}$ and
$$
A(t, T) \equiv-\delta \tau+\frac{1}{2} \frac{\sigma_{1}^{2}}{x_{1}^{2}}\left[\tau-2 B_{x_{1}}(t, T)+B_{2 x_{1}}(t, T)\right]
$$


数学生态学|MATH0030 Mathematical Ecology代写

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Mathematical models are used extensively in many areas of the Biological Sciences. This course aims to give a sample of the construction and mathematical analysis of such models in Population Ecology. The fundamental question to be addressed is: what natural (or human) factors control the abundance and distribution of the various populations of animals and plants that we see in Nature?

这是一份UCL伦敦大学学院MATH0030作业代写的成功案

数学生态学|MATH0030 Mathematical Ecology代写
问题 1.

The rate of change in the concentrations of $n$ interacting molecular species $\left(c_{i}, i=1,2, \ldots n\right)$ is determined by their reaction kinetics and expressed in terms of ordinary differential equations
$$
\frac{d c_{i}}{d t}=F_{i}\left(c_{1}, c_{2} \ldots c_{n}\right) .
$$
The explicit form of the functions $F_{i}$ in Eq. (4.1) depends on the details of the reactions. Spatial inhomogeneities also cause time variations in the concentrations even in the absence of chemical reactions. If these inhomogeneities are governed by diffusion, then in one spatial dimension,

证明 .

$$
\frac{\partial c_{i}}{\partial t}=D_{i} \frac{\partial^{2} c_{i}}{\partial x^{2}} .
$$
Here $D_{i}$ is the diffusion coefficient of the $i$ th species. In general, both diffusion and reactions contribute to the change in concentration and the time dependence of the $c_{i} \mathrm{~s}$ is governed by reaction-diffusion equations
$$
\frac{\partial c_{i}}{\partial t}=D_{i} \frac{\partial^{2} c_{i}}{\partial x^{2}}+F_{i}\left(c_{1}, c_{2} \ldots c_{n}\right) .
$$

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MATH0030 COURSE NOTES :


In addition, one can also define the average value of $X$ per vertex, $X_{a}$, as well as its normalized value, $0 \leq X_{n} \leq 1$ :
$$
\begin{array}{r}
X_{a}=\frac{X}{V} ; \quad{ }^{k} X_{a}=\frac{{ }^{k} X}{V} \
X_{n}=\frac{X}{X\left(K_{V}\right)} ; \quad{ }^{k} X_{n}=\frac{{ }^{k} X}{{ }^{k} X\left(K_{V}\right)}
\end{array}
$$


弦、支点和量子引力 Strings, Branes and Quantum Gravity 7CCMMS34

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这是一份UCL伦敦大学 7CCMMS34作业代写的成功案例

弦、支点和量子引力 Strings, Branes and Quantum Gravity 7CCMMS34
问题 1.

With the choice of equation the momentum density in the $+$ direction becomes
$$
P^{+}=\frac{1}{2 \pi \alpha^{\prime}} c,
$$
which is independent of $\sigma$ and $\tau$. The total momentum $p^{\mu}$, which is of course conserved, is given by
$$
p^{\mu}=\int_{a}^{\pi} d \sigma P^{\mu}(\sigma),
$$
where $a=0$ for the open string and $\sigma=-\pi$ for the closed string. Using equation (4.1.23) we find
$$
p^{+}=\int_{a}^{\pi} d \sigma P^{+}=\frac{(\pi-a)}{2 \pi \alpha^{\prime}} c .
$$


证明 .

Consequently, for the open string
$$
c=2 \alpha^{\prime} p^{+} \text {implying } P^{+}=\frac{p^{+}}{\pi},
$$
while for the closed string
$$
c=\alpha^{\prime} p^{+}, \text {implying } P^{+}=\frac{p^{+}}{2 \pi} .
$$

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 7CCMMS34 COURSE NOTES :

$$
\delta x^{\mu}=-\omega_{\nu}^{\mu} x^{\nu}+\eta^{\alpha} \partial_{\alpha} x^{\mu}
$$
and in particular
$$
\delta x^{+}=-\omega_{v}^{+} x^{v}+\eta^{0} 2 \alpha^{\prime} p^{+} .
$$
On the other hand,
$$
\delta\left(2 \alpha^{\prime} p^{+} \tau\right)=-2 \alpha^{\prime} p^{v} \tau \omega_{v^{*}}^{+}
$$
Equating these two results we find that
$$
\eta^{0}=\frac{\omega_{v}^{+}}{p^{+}}\left(x^{v}-2 \alpha^{\prime} p^{v} \tau\right)=\frac{\omega_{k}^{+}}{p^{+}}\left(x^{k}-2 \alpha^{\prime} p^{k} \tau\right) .
$$







几何测量理论 Geometric Measure Theory MATHM112

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这是一份UCL伦敦大学 MATHM112作业代写的成功案例

几何测量理论 Geometric Measure Theory MATHM112
问题 1.

Let $\mathcal{F}$ denote the collection of all sets $S \subset X \times Y$ for which the mapping
$$
x \mapsto \chi_{S}(x, y)
$$
is $\mu$-integrable for each $y \in Y$ and the mapping
$$
y \mapsto \int_{X} \chi_{S}(x, y) d \mu(x)
$$
is $\nu$-integrable. For $S \in \mathcal{F}$ we write
$$
\rho(S) \equiv \int_{Y}\left[\int_{X} \chi_{S}(x, y) d \mu(x)\right] d \nu(y)
$$


证明 .

Note $\mathcal{P}{0} \subset \mathcal{F}$ and $$ \rho(A \times B)=\mu(A) \nu(B)\left(A \times B \in \mathcal{P}{0}\right)
$$
If $A_{1} \times B_{1}, A_{2} \times B_{2} \in P_{0}$, then
$$
\left(A_{1} \times B_{1}\right) \cap\left(A_{2} \times B_{2}\right)=\left(A_{1} \cap A_{2}\right) \times\left(B_{1} \cap B_{2}\right) \in P_{0}
$$
and
$$
\left(A_{1} \times B_{1}\right)-\left(A_{2} \times B_{2}\right)=\left(\left(A_{1}-A_{2}\right) \times B_{1}\right) \cup\left(\left(A_{1} \cap A_{2}\right) \times\left(B_{1}-B_{2}\right)\right)
$$

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MATH112 COURSE NOTES :

$$
(\mu \times \nu)(R-S)=0
$$
hence
$$
\rho(R-S)=0
$$
Thus
$$
\mu{x \mid(x, y) \in S}=\mu{x \mid(x, y) \in R}
$$
for $v$ a.e. $y \in Y$, and
$$
(\mu \times \nu)(S)=\rho(R)=\int \mu{x \mid(x, y) \in S} d \nu(y) .
$$







工程师的数学 Mathematics for engineers MATH6503 / MATHG653

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这是一份UCL伦敦大学 MATH6503 / MATHG653作业代写的成功案例

工程师的数学 Mathematics for engineers MATH6503 / MATHG653
问题 1.

$$
T=\frac{1}{2 \omega} \int_{0}^{\theta_{1}} \frac{d \theta}{\sqrt{\left[\sin ^{2}(\alpha / 2)-\sin ^{2}(\theta / 2)\right]}}
$$
Now writing
$$
\sin (\theta / 2)=k \sin \phi
$$
where $k=\sin (\alpha / 2)$, then
$$
\omega T=\int_{0}^{\phi_{1}} \frac{d \phi}{\sqrt{\left(1-k^{2} \sin ^{2} \phi\right)}},
$$


证明 .

in which $k \sin \phi_{1}=\sin \left(\theta_{1} / 2\right)$. The integral is referred to as an elliptic integral of the first kind and is usually denoted by
$$
F\left(k, \phi_{1}\right)=\int_{0}^{\phi_{1}} \frac{d \phi}{\sqrt{\left(1-k^{2} \sin ^{2} \phi\right)}},
$$
with $0 \leqslant k \leqslant 1$. Similarly, the elliptic integral of the second kind is defined by
$$
E\left(k, \phi_{1}\right)=\int_{0}^{\Phi_{1}} \sqrt[V]{\left(1-k^{2} \sin ^{2} \phi\right) d \phi}
$$

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MATH6503 / MATHG653 COURSE NOTES :

non-linear pendulum equation, by multiplying by $2 d y / d x$. Then
$$
2 \frac{d y}{d x} \frac{d^{2} y}{d x^{2}}=2\left(-a y-b y^{3}\right) \frac{d y}{d x}
$$
This equation may be integrated directly to give
$$
\left(\frac{d y}{d x}\right)^{2}=C-a y^{2}-\frac{1}{2} b y^{4}
$$
where $C$ is a constant of integration. Taking the square root of and separating the variables, we find
$$
\int \frac{d y}{\sqrt{\left(C-a y^{2}-\frac{1}{2} b y^{4}\right)}}=x+B
$$







初级数学1Elementary Mathematics 1 MATH6101

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这是一份UCL伦敦大学 MATH006101作业代写的成功案例

初级数学1Elementary Mathematics 1 MATH6101
问题 1.

By inspection,
$$
T(x, y)=10+7.5(y-x)
$$
the real part of
$$
F(z)=10-7.5(1+i) z .
$$
A systematic derivation is as follows. The boundary and boundary values suggest that $T(x, y)$ is linear in $x$ and $y$,
$$
T(x, y)=a x+b y+c
$$


证明 .

From the boundary conditions,
$$
\begin{aligned}
&T(x, x-4)=a x+b(x-4)+c=-20 \
&T(x, x+4)=a x+b(x+4)+c=40
\end{aligned}
$$
By addition,
$$
2 a x+2 b x+2 c=20
$$
Since this is an identity in $x$, we must have $a=-b$ and $c=10$. From this and
$$
-b x+b x-4 b+10=-20 .
$$

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MATH6101 COURSE NOTES :

On the $u$-axis both arguments are 0 for $u>1$, one equals $\pi$ if $-1<u<1$, and both equal $\pi$, giving $\pi-\pi=0$ if $u<-1$.
$w-a=z^{2}$. Hence Arg $(w-a)=\operatorname{Arg} z^{2}=2 \operatorname{Arg} z$. Thus (a) gives
$$
T_{1}+\frac{2}{\pi}\left(T_{2}-T_{1}\right) \operatorname{Arg} z
$$
and we see that $T=T_{1}$ on the $x$-axis and $T=T_{2}$ on the $y$-axis are the boundary data.