Line 35: Line 35:
  
 
<font color="#ff0000"><span style="font-size: 19px;"><math>\color{blue}
 
<font color="#ff0000"><span style="font-size: 19px;"><math>\color{blue}
\text{In this specific case, we use only N-1 iterations}
+
\text{In this specific case, we use only N-1 iterations. }
 
</math></span></font>
 
</math></span></font>
  
Line 57: Line 57:
  
 
Solution 2:  
 
Solution 2:  
 +
Since the final range is 1 and the initial range is 20, we can say
 +
<math>
 +
\frac{2}{F_{N+1}} \le \frac{1.0}{20} \text{or equivalently } F_{N+1} \ge 40
 +
</math>
  
Since the final range is <span class="texhtml">1.0</span> and the initial range is <span class="texhtml">20</span>, we can say '''Failed to parse (syntax error): \frac{2}{F_{N+1}} \le \frac{1.0}{20} or equivalently F_{N+1}} \ge 40 '''
+
From the inequality, we get <math> F_{N+1} \ge 40 , \text{ so } N+1=9 </math>. Therefore the minimum number of iteration is N-1=7
  
From the inequality, we get <math> F_{N+1} \ge 40 , so N+1=9 </math>. Therefore the minimum number of iteration is N-1=7
+
<font color="#ff0000"><span style="font-size: 19px;"><math>\color{blue}
 +
F_9=55 \text{ and } F_8=34
 +
</math></span></font>
  
 
<br>  
 
<br>  
  
'''Problem 2. (20pts) Employ the DFP method to construct a set of Q-conjugate directions using the function'''  
+
Problem 2. (20pts) Employ the DFP method to construct a set of Q-conjugate directions using the function'''  
  
 
       <math>f = \frac{1}{2}x^TQx - x^Tb+c </math>
 
       <math>f = \frac{1}{2}x^TQx - x^Tb+c </math>
Line 83: Line 89:
  
 
       <math>f = \frac{1}{2}x^TQx - x^Tb+c </math>
 
       <math>f = \frac{1}{2}x^TQx - x^Tb+c </math>
     <span class="texhtml">''U'''s'''e''</span> <span class="texhtml">''i'''n'''i'''t'''i'''a'''l''</span>  <span class="texhtml">''p'''o'''i'''n'''t''</span> <span class="texhtml">''x''<sup>(0)</sup> = [0,0]<sup>''T ''</sup>''a'''n'''d''</span> <span class="texhtml">''H''<sub>0</sub> = ''I''<sub>2</sub></span>
+
     Use initial point x<sup>(0)</sup> = [0,0]<sup>T and H<sub>0</sub> = I<sub>2</sub>
     <span class="texhtml">''I''''n'''''</span>''''' <span class="texhtml" />'''h'''i'''s'' <span class="texhtml" />''c'''a'''s'''e'''''<b>,</b>''
+
      
 +
In this case
 
     <math>g^{(k)} = \begin{bmatrix}
 
     <math>g^{(k)} = \begin{bmatrix}
 
   1 & 1 \\
 
   1 & 1 \\
Line 93: Line 100:
 
  \end{bmatrix}</math>
 
  \end{bmatrix}</math>
  
       <span class="texhtml">''H''''e''''n''''c''''e'',</span>
+
       Hence
 
     <math>g^{(0)} = \begin{bmatrix}
 
     <math>g^{(0)} = \begin{bmatrix}
 
   -2  \\
 
   -2  \\
Line 110: Line 117:
 
<br>  
 
<br>  
  
       <span class="texhtml">''B'''e'''c'''a'''u'''s'''e ''</span><span class="texhtml">''f ''</span><span class="texhtml">''i'''s '''''</span>'''<span class="texhtml">''a''</span><span class="texhtml">''q''</span>'''''u'''a'''d'''r'''a'''t'''i'''c'''''<b><span class="texhtml">''f''</span></b>''u'''n'''c'''t'''i'''o'''n'',
+
       Because f is a quadratic function
  
 
       <math>\alpha_0 = argminf(x^{(0)} + \alpha d^{(0)}) = - \frac{g^{(0)^T}d^{(0)}}{d^{(0)^T}Qd^{(0)}} = - \frac{\begin{bmatrix}
 
       <math>\alpha_0 = argminf(x^{(0)} + \alpha d^{(0)}) = - \frac{g^{(0)^T}d^{(0)}}{d^{(0)^T}Qd^{(0)}} = - \frac{\begin{bmatrix}
Line 156: Line 163:
 
<br>  
 
<br>  
  
       <span class="texhtml">''O''''b''''s''''e''''r''''v''''e''</span> <span class="texhtml">''t''''h''''a''''t'''''<b>:</b></span>
+
       Observe that
 
     <math>\Delta x^{(0)} \Delta x^{(0)^T} = \begin{bmatrix}
 
     <math>\Delta x^{(0)} \Delta x^{(0)^T} = \begin{bmatrix}
 
   1  \\
 
   1  \\

Revision as of 03:28, 26 January 2013

AC - 3 August 2012 QE

Problem 1. (20 pts)

(i) (10 pts) Find the factor by which the uncertainty range is reduced when using the Fibonacci method. Assume that the last step has the form

$ \begin{align} 1- \rho_{N-1} = \frac{F_{2}}{F_{3}} = \frac{2}{3}, \end{align} $

where N − 1 is the number of steps performed in the uncertainty range reduction process.



Solution:

   The reduction factor is (1 − ρ1)(1 − ρ2)(1 − ρ3)...(1 − ρN − 1)
Since 
$  1- \rho_{N-1} = \frac{F_{2}}{F_{3}} = \frac{2}{3},  $
we have 
$  1- \rho_{N-2} = \frac{F_{3}}{F_{4}} $     and so on.
   Then, we have
$  (1- \rho_{1})(1- \rho_{2})(1- \rho_{3})...(1- \rho_{N-1}) = \frac{F_{N}}{F_{N+1}}   \frac{F_{N-1}}{F_{N}}   ...   \frac{F_{2}}{F_{3}} = \frac{F_{2}}{F_{N+1}} $
Therefore, the reduction factor is
$ \frac{2}{F_{N+1}} $


Solution 2:

The uncertainty interval is reduced by $ (1- \rho_{1})(1- \rho_{2})(1- \rho_{3})...(1- \rho_{N-1}) = \frac{F_{N}}{F_{N+1}} \frac{F_{N-1}}{F_{N}} ... \frac{F_{2}}{F_{3}} = \frac{F_{2}}{F_{N+1}} $

$ \color{blue} \text{In this specific case, we use only N-1 iterations. } $



(ii)(10 pts) It is known that the minimizer of a certain function f(x) is located in the interval[-5, 15]. What is the minimal number of iterations of the Fibonacci method required to box in the minimizer within the range 1.0? Assume that the last useful value of the factor reducing the uncertainty range is 2/3, that is

$ 1- \rho_{N-1} = \frac{F_{2}}{F_{3}} = \frac{2}{3}, $


Solution:

      Final Range: 1.0; Initial Range: 20.
      $  \frac{2}{F_{N+1}} \le \frac{1.0}{20} $, or $  F_{N+1} \ge 40 $ 
      So, N + 1 = 9
      Therefore, the minimal iterations is N-1 or 7.


Solution 2: Since the final range is 1 and the initial range is 20, we can say $ \frac{2}{F_{N+1}} \le \frac{1.0}{20} \text{or equivalently } F_{N+1} \ge 40 $

From the inequality, we get $ F_{N+1} \ge 40 , \text{ so } N+1=9 $. Therefore the minimum number of iteration is N-1=7

$ \color{blue} F_9=55 \text{ and } F_8=34 $


Problem 2. (20pts) Employ the DFP method to construct a set of Q-conjugate directions using the function

      $ f = \frac{1}{2}x^TQx - x^Tb+c  $
     $   =\frac{1}{2}x^T  \begin{bmatrix}   1 & 1 \\   1 & 2  \end{bmatrix}x-x^T\begin{bmatrix}   2  \\   1  \end{bmatrix} + 3. $

Where x(0) is arbitrary.


Solution:

      $ f = \frac{1}{2}x^TQx - x^Tb+c  $
   Use initial point x(0) = [0,0]T and H0 = I2
   

In this case

   $ g^{(k)} = \begin{bmatrix}   1 & 1 \\   1 & 2  \end{bmatrix} x^{(k)} - \begin{bmatrix}   2  \\   1  \end{bmatrix} $
      Hence
   $ g^{(0)} = \begin{bmatrix}   -2  \\   -1  \end{bmatrix}, $  $ d^{(0)} = -H_0g^{(0)} =- \begin{bmatrix}   1 & 0 \\   0 & 1  \end{bmatrix}\begin{bmatrix}   -2  \\   -1  \end{bmatrix} = \begin{bmatrix}   2  \\   1  \end{bmatrix} $


      Because f is a quadratic function
      $ \alpha_0 = argminf(x^{(0)} + \alpha d^{(0)}) = - \frac{g^{(0)^T}d^{(0)}}{d^{(0)^T}Qd^{(0)}} = - \frac{\begin{bmatrix}   -2 & -1   \end{bmatrix}\begin{bmatrix}   2  \\   1  \end{bmatrix}}{\begin{bmatrix}   2 & 1\end{bmatrix}\begin{bmatrix}   1 & 1 \\   1 & 2  \end{bmatrix}\begin{bmatrix}   2  \\   1  \end{bmatrix}} = \frac{1}{2} $
      $ x^{(1)} = x^{(0)} + \alpha d^{(0)} = \frac{1}{2} \begin{bmatrix}   2  \\   1  \end{bmatrix} = \begin{bmatrix}   1  \\   \frac{1}{2}  \end{bmatrix} $
      $ \Delta x^{(0)} = x^{(1)}- x^{(0)} = \begin{bmatrix}   1  \\   \frac{1}{2}  \end{bmatrix} $
   $ g^{(1)} =\begin{bmatrix}   1 & 1 \\   1 & 2  \end{bmatrix} x^{(1)} - \begin{bmatrix}   2  \\   1  \end{bmatrix}= \begin{bmatrix}   -\frac{1}{2}  \\   1  \end{bmatrix} $
      $ \Delta g^{(0)} = g^{(1)} - g^{(0)} = \begin{bmatrix}   -\frac{3}{2}  \\   2  \end{bmatrix}  $


      Observe that
   $ \Delta x^{(0)} \Delta x^{(0)^T} = \begin{bmatrix}   1  \\   \frac{1}{2}   \end{bmatrix} \begin{bmatrix}   1  & \frac{1}{2}   \end{bmatrix} = \begin{bmatrix}   1 & \frac{1}{2}  \\   \frac{1}{2}  & \frac{1}{4}   \end{bmatrix}  $
   $  \Delta x^{(0)^T} \Delta g^{(0)} = \begin{bmatrix}   1  & \frac{1}{2}   \end{bmatrix}\begin{bmatrix}   \frac{3}{2}   \\   2   \end{bmatrix}  = \frac{5}{2} $
   $ H_0 \Delta g^{(0)} = \begin{bmatrix}   1 & 0 \\   0 & 1  \end{bmatrix} \begin{bmatrix}   \frac{3}{2}   \\   2   \end{bmatrix} = \begin{bmatrix}   \frac{3}{2}   \\   2   \end{bmatrix}, $ $ (H_0 \Delta g^{(0)})(H_0 \Delta g^{(0)})^T = \begin{bmatrix}   \frac{9}{4}  & 3 \\   3 & 4  \end{bmatrix} $
   $ \Delta g^{(0)^T}H_0 \Delta g^{(0)} = \begin{bmatrix}   \frac{3}{2}  & 2   \end{bmatrix} \begin{bmatrix}   1 & 0 \\   0 & 1  \end{bmatrix} \begin{bmatrix}   \frac{3}{2}  \\ 2   \end{bmatrix} = \frac{25}{4} $
   Using the above, now we have
   $ H_1 = H_0 + \frac{\Delta x^{(0)} \Delta x^{(0)^T}}{\Delta x^{(0)^T} \Delta g^{(0)}} - \frac{(H_0 \Delta g^{(0)})(H_0 \Delta g^{(0)})^T}{\Delta g^{(0)^T}H_0 \Delta g^{(0)} }  = \begin{bmatrix}   1 & 0 \\   0 & 1  \end{bmatrix} + \begin{bmatrix}   \frac{2}{5} & \frac{1}{5} \\   \frac{1}{5} & \frac{1}{10}  \end{bmatrix} - \frac{25}{4}\begin{bmatrix}   \frac{9}{4} & 3 \\   3 & 4  \end{bmatrix} = \begin{bmatrix}   \frac{26}{25} & -\frac{7}{25} \\   -\frac{7}{25} & \frac{23}{50}  \end{bmatrix} $
      T'hen we have,
   $ d^{(1)} = -H_1 g^{(0)} = - \begin{bmatrix}   \frac{26}{25} & -\frac{7}{25} \\   -\frac{7}{25} & \frac{23}{50}  \end{bmatrix} \begin{bmatrix}   -\frac{1}{2}  \\   1  \end{bmatrix} = \begin{bmatrix}   \frac{4}{5}  \\   -\frac{3}{5}  \end{bmatrix} $
      $ \alpha_1 = argminf(x^{(1)} + \alpha d^{(1)}) = - \frac{g^{(1)^T}d^{(1)}}{d^{(1)^T}Qd^{(1)}} = - \frac{\begin{bmatrix}   -2 & 1   \end{bmatrix}\begin{bmatrix}   \frac{4}{5}  \\   -\frac{3}{5}  \end{bmatrix}}{\begin{bmatrix}   \frac{4}{5} & -\frac{3}{5}\end{bmatrix}\begin{bmatrix}   1 & 1 \\   1 & 2  \end{bmatrix}\begin{bmatrix}   \frac{4}{5}  \\   -\frac{3}{5}  \end{bmatrix}} = \frac{5}{2} $
      $ x^{(2)} = x^{(1)} + \alpha_1 d^{(1)} = \begin{bmatrix}   1  \\   \frac{1}{2}  \end{bmatrix} + \frac{5}{2}\begin{bmatrix}   \frac{4}{5}  \\   -\frac{3}{5}  \end{bmatrix} = \begin{bmatrix}   3  \\   -1  \end{bmatrix}  $
      $ \Delta x^{(1)} = x^{(2)} - x^{(1)} = \begin{bmatrix}   2  \\   -\frac{3}{2}  \end{bmatrix} $
   $ g^{(2)} = \begin{bmatrix}   1 & 1 \\   1 & 2  \end{bmatrix} x^{(0)} - \begin{bmatrix}   2  \\   1  \end{bmatrix} = \begin{bmatrix}   0  \\   0  \end{bmatrix} $
      Note that we have $ d^{(0)^T}Qd^{(0)} = 0; $
   that is, $ d^{(0)} = \begin{bmatrix}   2  \\   1  \end{bmatrix} $ a'n'd $ d^{(1)}  = \begin{bmatrix}   \frac{4}{5}  \\   -\frac{3}{5}  \end{bmatrix} $ are Q-conjugate directions.


Problem 3. (20pts) For the system of linear equations,<span class="texhtml" />'x = b, where

$ A = \begin{bmatrix} 1 & 0 &-1 \\ 0 & 1 & 0 \\ 0 & -1& 0 \end{bmatrix}, b = \begin{bmatrix} 0 \\ 2 \\ 1 \end{bmatrix} $


Find the minimum length vector $ x^{(\ast)} $ that minimizes $ \| Ax -b\|^{2}_2 $



Solutions:

      $ A = BC = \begin{bmatrix}   1 & 0  \\   0 & 1   \\   0 & -1  \end{bmatrix} \begin{bmatrix}   1 & 0 &-1  \\   0 & 1 & 0    \end{bmatrix} $
      $ B^{\dagger} = (B^T B)^{-1}B^T = \begin{bmatrix}   1 & 0 \\   0 & 2    \end{bmatrix}^{-1} \begin{bmatrix}   1 & 0 & 0  \\   0 & 1 & -1    \end{bmatrix} = \begin{bmatrix}   1 & 0 & 0  \\   0 & \frac{1}{2} & -\frac{1}{2}    \end{bmatrix} $
      $ C^{\dagger} = C^T(CC^T)^{-1} =\begin{bmatrix}   1 & 0  \\   0 & 1   \\   -1 & 0  \end{bmatrix} \begin{bmatrix}   2 & 0 \\   0 & 1    \end{bmatrix}^{-1} = \begin{bmatrix}   \frac{1}{2} & 0  \\   0 & 1   \\   -\frac{1}{2} & 0  \end{bmatrix}  $
      $ A^{\dagger} = C^{\dagger}B^{\dagger} =\begin{bmatrix}   \frac{1}{2} & 0  \\   0 & 1   \\   -\frac{1}{2} & 0  \end{bmatrix} \begin{bmatrix}   1 & 0 & 0  \\   0 & \frac{1}{2} & -\frac{1}{2}    \end{bmatrix} =  \begin{bmatrix}   \frac{1}{2} & 0 & 0  \\   0 & \frac{1}{2} & -\frac{1}{2}  \\   -\frac{1}{2} & 0 & 0  \end{bmatrix} $
      $  x^{\ast} = A^{\dagger} b = \begin{bmatrix}   \frac{1}{2} & 0 & 0  \\   0 & \frac{1}{2} & -\frac{1}{2}  \\   -\frac{1}{2} & 0 & 0  \end{bmatrix}\begin{bmatrix}   0 \\   \frac{1}{2} \\   1  \end{bmatrix} = \begin{bmatrix}   0 \\   \frac{1}{2} \\   0  \end{bmatrix} $


Solution 2:

$ x^{(\ast)}=A^{\dagger}b $

Since $ A = BC = \begin{bmatrix} 1 & 0 \\ 0 & 1 \\ 0 & -1 \end{bmatrix} \begin{bmatrix} 1 & 0 &-1 \\ 0 & 1 & 0 \end{bmatrix} $

$ B^{\dagger} = (B^T B)^{-1}B^T = \begin{bmatrix} 1 & 0 \\ 0 & 2 \end{bmatrix}^{-1} \begin{bmatrix} 1 & 0 & 0 \\ 0 & 1 & -1 \end{bmatrix} = \begin{bmatrix} 1 & 0 & 0 \\ 0 & \frac{1}{2} & -\frac{1}{2} \end{bmatrix} $

      $ C^{\dagger} = C^T(CC^T)^{-1} =\begin{bmatrix}   1 & 0  \\   0 & 1   \\   -1 & 0  \end{bmatrix} \begin{bmatrix}   2 & 0 \\   0 & 1    \end{bmatrix}^{-1} = \begin{bmatrix}   \frac{1}{2} & 0  \\   0 & 1   \\   -\frac{1}{2} & 0  \end{bmatrix}  $
      $ A^{\dagger} = C^{\dagger}B^{\dagger} =\begin{bmatrix}   \frac{1}{2} & 0  \\   0 & 1   \\   -\frac{1}{2} & 0  \end{bmatrix} \begin{bmatrix}   1 & 0 & 0  \\   0 & \frac{1}{2} & -\frac{1}{2}    \end{bmatrix} =  \begin{bmatrix}   \frac{1}{2} & 0 & 0  \\   0 & \frac{1}{2} & -\frac{1}{2}  \\   -\frac{1}{2} & 0 & 0  \end{bmatrix} $
      $  x^{\ast} = A^{\dagger} b = \begin{bmatrix}   \frac{1}{2} & 0 & 0  \\   0 & \frac{1}{2} & -\frac{1}{2}  \\   -\frac{1}{2} & 0 & 0  \end{bmatrix}\begin{bmatrix}   0 \\   \frac{1}{2} \\   1  \end{bmatrix} = \begin{bmatrix}   0 \\   \frac{1}{2} \\   0  \end{bmatrix} $


Problem 4. (20pts) Use any simplex method to solve the following linear program.

           Maximize    x1 + 2x2
        S'ubject to    $ -2x_1+x_2 \le 2 $
                       $ x_1-x_2 \ge -3 $
                       $ x_1 \le -3 $
                       $ x_1 \ge 0, x_2 \ge 0. $



Solution:

        We can transfer the problem to the following standard form:
        Mnimize    x1 − 2x2
        Sbject to     − 2x1 + x2 + x3 = 2
                       x1 + x2 + x4 = 3
                       x1 + x5 = 3
                       $ x_1, x_2, x_3, x_4, x_5 \ge 0. $
       We form the corresponding tableau for the problem
     $ \begin{matrix}   a_1 & a_2 & a_3 & a_4 & a_5 & b \\   -2 & 1& 1 &0& 0& 2 \\   -1& 1& 0 &1 &0 &3\\   1 &0& 0& 0& 1& 3\\   -1& -2 &0& 0& 0& 0  \end{matrix} $
      
Since it is already in canonical form. Because r2 =  − 7, we bring a2 into the basis.
      After computing the ratios, we pivot about the (1,2) element of the tableau to obtain
     $ \begin{matrix}   a_1 & a_2 & a_3 & a_4 & a_5 & b \\   -2 & 1& 1 &0& 0& 2 \\   1& 0& -1 &1 &0 &1\\   1 &0& 0& 0& 1& 3\\   -5& 0 &2& 0& 0& 4  \end{matrix} $
      Similarly, we pivot about the (2,1) element to obtain 
     $ \begin{matrix}   a_1 & a_2 & a_3 & a_4 & a_5 & b \\   0 & 1& -1 &2& 0& 4 \\   1& 0& -1 &1 &0 &1\\   0 &0& 1& -1& 1& 2\\   0& 0 &-3& 5& 0& 9  \end{matrix} $
      Similarly, we pivot about the (3,3) element to obtain 
     $ \begin{matrix}   a_1 & a_2 & a_3 & a_4 & a_5 & b \\   0 & 1& 0 &1& 1& 6 \\   1& 0& 0 &0 &1 &3\\   0 &0& 1& -1& 1& 2\\   0& 0 &0& 2& 3& 15  \end{matrix} $
      Therefore, x1 = 3, x2 = 6, maximize the function.

Solution 2:

The standard form for this problem is

        Mnimize    x1 − 2x2
        Sbject to     − 2x1 + x2 + x3 = 2
                       x1 + x2 + x4 = 3
                       x1 + x5 = 3
                       $ x_1, x_2, x_3, x_4, x_5 \ge 0. $

$ \begin{matrix} a_1 & a_2 & a_3 & a_4 & a_5 & b \\ -2 & 1& 1 &0& 0& 2 \\ -1& 1& 0 &1 &0 &3\\ 1 &0& 0& 0& 1& 3\\ -1& -2 &0& 0& 0& 0 \end{matrix}\Rightarrow \begin{matrix} a_1 & a_2 & a_3 & a_4 & a_5 & b \\ -2 & 1& 1 &0& 0& 2 \\ 1& 0& -1 &1 &0 &1\\ 1 &0& 0& 0& 1& 3\\ -5& 0 &2& 0& 0& 4 \end{matrix} \Rightarrow \begin{matrix} a_1 & a_2 & a_3 & a_4 & a_5 & b \\ 0 & 1& -1 &2& 0& 4 \\ 1& 0& -1 &1 &0 &1\\ 0 &0& 1& -1& 1& 2\\ 0& 0 &-3& 5& 0& 9 \end{matrix} \Rightarrow \begin{matrix} a_1 & a_2 & a_3 & a_4 & a_5 & b \\ 0 & 1& 0 &1& 1& 6 \\ 1& 0& 0 &0 &1 &3\\ 0 &0& 1& -1& 1& 2\\ 0& 0 &0& 2& 3& 15 \end{matrix} $

From the last tableau, we can see that $ \begin{bmatrix} x^{1} = 3\\ x^{2} = 6 \end{bmatrix} $ maximizes the object function. The maximum value is 15


Problem 5.(20pts) Solve the following problem:

           Minimize    $ -x_1^2 + 2x_2 $
        Subject to    $ x_1^2+x_2^2 \le 1 $
                       $  x_1 \ge 0 $
                       $ x_2 \ge 0 $

(i)(10pts) Find the points that satisfy the KKT condition.

Solution:

        Standard Form:
        Minimize    $ -x_1^2 + 2x_2 $
        Su   $ g_1(x) = x_1^2+x_2^2 - 1 \le 0 $
                       $ g_2(x) = -x_2 \le 0 $
        The KKT Condition.
     $ 1. \mu _1, \mu _2 \ge 0 $  
     2. − 2x1 + 2x1μ1 = 0  
       2.2 + 2x2μ1 − μ2 = 0  
     $ 3. (x_1^2+x_2^2-1)\mu_1 - x_2\mu _2 = 0 $  
     $ 4. g_1(x),g_2(x) \le 0 $  


        Case 1:
     I'f μ1 = 0 and μ2 = 0,
           t'h'e'n,2 = 0which is impossible.
     
     Case 2:
     I'f μ1 = 0 and $ \mu_2 \not= 0, $
           t'h'e'n2 = 2,x1 = 0,x2 = 0..
        Case 3:
     I'f $ \mu_1 \not= 0 $ and μ2 = 0,
           $ then, x_1^2 + x_2^2 = 1  $
                     $ if x1 \not= 0, then \mu_1 = 1, x_2 = -1  $which is impossible.
                     if x1 = 0,then x2 = 1,μ1 =  − 1which is impossible.
        Case 4:
     I'f $ \mu_1 \not= 0 $ and $ \mu_2 \not= 0, $
           $ then, x_2 = 0, x_1^2 + x_2^2 = 1. So,  x_1 = 1, \mu_1 = 1, \mu_2 = 2.  $.
        Therefore, there are two points that satisfy KKT condition.

     $ \begin{bmatrix}   \mu_1 ^{\ast}= 0 \\ \mu_2 ^{\ast}= 2 \\ x_1^{\ast}= 0 \\x_2^{\ast}= 0   \end{bmatrix}and \begin{bmatrix}   \mu_1 ^{\ast}= 1 \\ \mu_2 ^{\ast}= 2 \\ x_1^{\ast}= 1 \\x_2^{\ast}= 0   \end{bmatrix}  $ 

Solution 2:

Because in both the object and subject function, the term related to $ x_1 $ is $ x_1^{2} $, which doesn't depend on the sign of $ x_1 $, we can ignore the constraint function $ x_1 >0 $ for now.

The standard form of the optimizing problem is                                                                                                                                                                                          $ \text{minimize } -x_1^2 + 2x_2 $

                        $ \text{subject to } g_1(x)=x_1^2+x_2^2-1 \le 0 \text { and } g_2(x)=-x_2 \le 0 $

The KKT Condition.

     $ 1. \mu _1, \mu _2 \ge 0 $  
     $ 2.\begin{bmatrix}   -2x_1+2\mu_1 x_1 \\ 2+2\mu_1 x_2-\mu_2   \end{bmatrix}=0 $
     $ 3. (x_1^2+x_2^2-1)\mu_1 - x_2\mu _2 = 0 $  
     $ 4. g_1(x),g_2(x) \le 0 $  

$ \text {Case 1: } \mu_1=\mu_2=0 \text{, which implies } 2=0 \Rightarrow \text{Impossible} $

$ \text {Case 2: } \mu_1 \neq 0, \mu_2=0 \Rightarrow \left\{\begin{matrix} x_1^2+x_2^2-1=0\\ -2x_1+2\mu_1x_1=0\\ 2+2\mu_1 x_1=0 \end{matrix}\right. \Rightarrow \left\{\begin{matrix} \mu_1=1\\ \mu_2=0\\ x_1=0\\ x_2=-1 \end{matrix}\right. \Rightarrow x_2<0, \text{ Impossible } $


$ \text {Case 3: } \mu_1 = 0, \mu_2 \neq 0 \Rightarrow \left\{\begin{matrix} -x_2\mu_2=0\\ -2x_1=0\\ 2-\mu_2=0 \end{matrix}\right. \Rightarrow \left\{\begin{matrix} \mu_1=0\\ \mu_2=2\\ x_1=0\\ x_2=0 \end{matrix}\right. $

$ \text {Case 4: } \mu_1 \neq 0, \mu_2 \neq 0 \Rightarrow \left\{\begin{matrix} x_1^2+x_2^2-1=0\\ x_2=0\\ \end{matrix}\right. \Rightarrow \left\{\begin{matrix} \mu_1=1\\ \mu_2=2\\ x_1=1\\ x_2=0 \end{matrix}\right. $


(ii)(10pts)Apply the SONC and SOSC to determine the nature of the critical points from the previous part.

Solution:

        Apply SOSC to the first point.
     $ \nabla g_2(x)^t y = 0 $
     $ \begin{bmatrix}   0 & -1  \end{bmatrix} y = 0 $
     $ y = \begin{bmatrix}   a \\ 0  \end{bmatrix},  a\not= 0 $
        $ L(x,\mu) = F(x) + \mu_2 G_2(x) =\begin{bmatrix}   -2 & 0 \\ 0 & 0   \end{bmatrix}  $
     Check ytL(x,μ)y
     $ \begin{bmatrix}   a & 0  \end{bmatrix}\begin{bmatrix}   -2 & 0 \\ 0 & 0   \end{bmatrix} \begin{bmatrix}   a \\ 0  \end{bmatrix} = -2a^2 \lneq 0 $ which means SOSC fails.


        Apply SOSC to the second point.
     $ \nabla g_1(x)^t y = 0,  $
        $ \begin{bmatrix}   2x_1 & 2x_2  \end{bmatrix} y = 0 $
     $ y = \begin{bmatrix}   0 \\ a  \end{bmatrix} where a\not= 0 $
        $ L(x,\mu) = F(x) + \mu_1 G_1(x) + \mu_2 G_2(x) =\begin{bmatrix}   -2 & 0 \\ 0 & 0   \end{bmatrix}  + \begin{bmatrix}   2 & 0 \\ 0 & 2    \end{bmatrix}  = \begin{bmatrix}   0 & 0 \\ 0 & 2   \end{bmatrix}  $
     Check ytL(x,μ)y
     $ \begin{bmatrix}   0 & a  \end{bmatrix}\begin{bmatrix}   0 & 0 \\ 0 & 2   \end{bmatrix} \begin{bmatrix}   0 \\ a  \end{bmatrix} = 2a^2 \gneq 0 $ that implies
     $ \begin{bmatrix}   x^{\ast} = 1\\ x^{\ast} = 0   \end{bmatrix} $ is the minimized point.

Solution 2:

$ \text{For } \left\{\begin{matrix} \mu_1=0\\ \mu_2=2\\ x_1=0\\ x_2=0 \end{matrix}\right. \text{, let } \nabla g_2(x)^T y=0, \text{We get } y=\begin{bmatrix} a\\ 0 \end{bmatrix} \text{, where } y \text { are all the points on the tangent plane} $

$ L(x,\mu)=F(x,\mu)+\mu_2 G_2 (x)=\begin{bmatrix} -2 & 0\\ 0 & 0 \end{bmatrix} $

$ y^T L(x,\mu)y=-2a^2 \le 0 \Rightarrow \text{It doesn;t satisfy SOSC} $


$ \text{For } \left\{\begin{matrix} \mu_1=1\\ \mu_2=2\\ x_1=1\\ x_2=0 \end{matrix}\right. \text{, let } \nabla g_2(x)^T y=0, \text{We get } y=\begin{bmatrix} 0\\ a \end{bmatrix} \text{, where } y \text { are all the points on the tangent plane} $

$ L(x,\mu)=F(x,\mu)+\mu_2 G_2 (x)=\begin{bmatrix} 0 & 0\\ 0 & 2 \end{bmatrix} $

$ y^T L(x,\mu)y=2a^2 \geq 0 \Rightarrow \text{It doesn;t satisfy SOSC} $

$ \text{So, } \begin{bmatrix} x^{\ast} = 1\\ x^{\ast} = 0 \end{bmatrix} \text{is the minimum point.} $

Solution 2:

$ \text{Let the initial point be } x^{(0)}= \begin{bmatrix} 0\\ 0 \end{bmatrix} \text{and initial Hessian be } H_0=\begin{bmatrix} 1 & 0\\ 0 & 1\end{bmatrix} $

$ g^{(k)} = \begin{bmatrix} 1 & 1 \\ 1 & 2 \end{bmatrix} x^{(k)} - \begin{bmatrix} 2 \\ 1 \end{bmatrix} , \text{so} $

$ g^{(0)} = \begin{bmatrix} -2 \\ -1 \end{bmatrix}, $ $ d^{(0)} = -H_0 g^{(0)} =- \begin{bmatrix} 1 & 0 \\ 0 & 1 \end{bmatrix}\begin{bmatrix} -2 \\ -1 \end{bmatrix} = \begin{bmatrix} 2 \\ 1 \end{bmatrix} $

$ \alpha_0 = - \frac{g^{(0)^T}d^{(0)}}{d^{(0)^T}Qd^{(0)}} = - \frac{\begin{bmatrix} -2 & -1 \end{bmatrix}\begin{bmatrix} 2 \\ 1 \end{bmatrix}}{\begin{bmatrix} 2 & 1\end{bmatrix}\begin{bmatrix} 1 & 1 \\ 1 & 2 \end{bmatrix}\begin{bmatrix} 2 \\ 1 \end{bmatrix}} = \frac{1}{2} $

$ x^{(1)} = x^{(0)} + \alpha d^{(0)} = \frac{1}{2} \begin{bmatrix} 2 \\ 1 \end{bmatrix} = \begin{bmatrix} 1 \\ \frac{1}{2} \end{bmatrix} $

$ \Delta x^{(0)} = x^{(1)}- x^{(0)} = \begin{bmatrix} 1 \\ \frac{1}{2} \end{bmatrix} $

$ g^{(1)} =\begin{bmatrix} 1 & 1 \\ 1 & 2 \end{bmatrix} x^{(1)} - \begin{bmatrix} 2 \\ 1 \end{bmatrix}= \begin{bmatrix} -\frac{1}{2} \\ 1 \end{bmatrix} $

$ \Delta g^{(0)} = g^{(1)} - g^{(0)} = \begin{bmatrix} -\frac{3}{2} \\ 2 \end{bmatrix} $

$ \text{If we plug in the above numbers in the formula, we can get} $

$ H_1 = H_0 + \frac{\Delta x^{(0)} \Delta x^{(0)^T}}{\Delta x^{(0)^T} \Delta g^{(0)}} - \frac{(H_0 \Delta g^{(0)})(H_0 \Delta g^{(0)})^T}{\Delta g^{(0)^T}H_0 \Delta g^{(0)} } = \begin{bmatrix} 1 & 0 \\ 0 & 1 \end{bmatrix} + \begin{bmatrix} \frac{2}{5} & \frac{1}{5} \\ \frac{1}{5} & \frac{1}{10} \end{bmatrix} - \frac{25}{4}\begin{bmatrix} \frac{9}{4} & 3 \\ 3 & 4 \end{bmatrix} = \begin{bmatrix} \frac{26}{25} & -\frac{7}{25} \\ -\frac{7}{25} & \frac{23}{50} \end{bmatrix} $

$ d^{(1)} = -H_1 g^{(1)} = - \begin{bmatrix} \frac{26}{25} & -\frac{7}{25} \\ -\frac{7}{25} & \frac{23}{50} \end{bmatrix} \begin{bmatrix} -\frac{1}{2} \\ 1 \end{bmatrix} = \begin{bmatrix} \frac{4}{5} \\ -\frac{3}{5} \end{bmatrix} $

$ \alpha_1 = - \frac{g^{(1)^T}d^{(1)}}{d^{(1)^T}Qd^{(1)}} = - \frac{\begin{bmatrix} -2 & 1 \end{bmatrix}\begin{bmatrix} \frac{4}{5} \\ -\frac{3}{5} \end{bmatrix}}{\begin{bmatrix} \frac{4}{5} & -\frac{3}{5}\end{bmatrix}\begin{bmatrix} 1 & 1 \\ 1 & 2 \end{bmatrix}\begin{bmatrix} \frac{4}{5} \\ -\frac{3}{5} \end{bmatrix}} = \frac{5}{2} $

$ x^{(2)} = x^{(1)} + \alpha_1 d^{(1)} = \begin{bmatrix} 1 \\ \frac{1}{2} \end{bmatrix} + \frac{5}{2}\begin{bmatrix} \frac{4}{5} \\ -\frac{3}{5} \end{bmatrix} = \begin{bmatrix} 3 \\ -1 \end{bmatrix} $

$ \Delta x^{(1)} = x^{(2)} - x^{(1)} = \begin{bmatrix} 2 \\ -\frac{3}{2} \end{bmatrix} $

$ g^{(2)} = \begin{bmatrix} 1 & 1 \\ 1 & 2 \end{bmatrix} x^{(2)} - \begin{bmatrix} 2 \\ 1 \end{bmatrix} = \begin{bmatrix} 0 \\ 0 \end{bmatrix} $

$ \text{When the gradient is 0, we reach the minimum point, which is } x^{(2)}=\begin{bmatrix} 3 \\ -1 \end{bmatrix} $

Alumni Liaison

has a message for current ECE438 students.

Sean Hu, ECE PhD 2009