Minimum enclosing ellipse

Minimum encompassing circle and ellipse

This is again about finding the smallest geometric shape containing all our data points. Here I focus on easy, convex cases: a circle and an ellipse. After the last post, where I was struggling mightily with a non-convex version of this model, this should be a breeze. First let's do circles.

1. Minimum encompassing circle

This looks like a very easy problem to formulate and solve, not worth spending much time on. I think there are some interesting angles, you may not have thought about before. 

Given \(n\) points \({\color{darkblue}p}_i\) (with their \(x\) and \(y\) coordinates), find the smallest circle identified by it center coordinates \({\color{darkred}c}\) and its radius \({\color{darkred}r}\), by minimizing \({\color{darkred}r}\), under the constraint that all points \({\color{darkblue}p}_i\) are inside the circle.  

Smallest circle model
\[\begin{align}\min_{{\color{darkred}r},{\color{darkred}c}}\> & {\color{darkred}r} \\ & {\bf{dist}}({\color{darkblue}p}_i,{\color{darkred}c}) \le {\color{darkred}r} && \forall i\\ & {\color{darkred}r}\ge 0 \\ & i \in \{1,\dots,n\} \end{align}\]

By minimizing \({\color{darkred}r}\), we also minimize the diameter \(2{\color{darkred}r}\), area \(\pi{\color{darkred}r}^2\) or even circumference \(2\pi{\color{darkred}r}\). A practical NLP model can look like:

Practical NLP Model
\[\begin{align}\min\> & {\color{darkred}R} \\ & \sum_{k}({\color{darkblue}p}_{i,k}-{\color{darkred}c}_{k})^2 \le {\color{darkred}R} && \forall i \\ & i \in \{1,\dots,n\} \\ & k \in \{x,y\} \end{align}\]

Here \({\color{darkred}R} = {\color{darkred}r}^2\). Using \({\color{darkred}R}\) saves us a square root operation (which is a bit dangerous close to zero: its derivative is not defined there). A good starting point can be found as follows: \[\begin{align}&{\color{darkred}c}^0_k := \frac{1}{n}\sum_i {\color{darkblue}p}_{i,k} \\  &{\color{darkred}R}^0 := \max_i  \sum_k ({\color{darkblue}p}_{i,k}-{\color{darkred}c}^0_k)^2 \end{align}\] 

When we solve this model with \(n=100\) random data point using the local NLP solver Conopt, we see some great performance:

----     87 PARAMETER results  

                 initial         nlp

c         .x      41.710      50.425
c         .y      43.748      43.448
r         .       69.349      62.342
time      .                    0.015
iterations.                    2.000

It only takes two iterations (!!) to find the optimal solution. These are outer iterations, so not the same as LP simplex iterations. The Conopt log confirms the initial point was feasible. We see here the benefits of providing a good starting point. It gives better performance, and increased reliability at the same time. 

Initial and final, optimal circle with \(n=100\) data points

The plot shows the initial starting solution (the outer, orange circle) and the final optimal solution (the inner, purple circle).

Data points

----     20 PARAMETER p  data points

                   x           y

point1        17.175      84.327
point2        55.038      30.114
point3        29.221      22.405
point4        34.983      85.627
point5         6.711      50.021
point6        99.812      57.873
point7        99.113      76.225
point8        13.069      63.972
point9        15.952      25.008
point10       66.893      43.536
point11       35.970      35.144
point12       13.149      15.010
point13       58.911      83.089
point14       23.082      66.573
point15       77.586      30.366
point16       11.049      50.238
point17       16.017      87.246
point18       26.511      28.581
point19       59.396      72.272
point20       62.825      46.380
point21       41.331      11.770
point22       31.421       4.655
point23       33.855      18.210
point24       64.573      56.075
point25       76.996      29.781
point26       66.111      75.582
point27       62.745      28.386
point28        8.642      10.251
point29       64.125      54.531
point30        3.152      79.236
point31        7.277      17.566
point32       52.563      75.021
point33       17.812       3.414
point34       58.513      62.123
point35       38.936      35.871
point36       24.303      24.642
point37       13.050      93.345
point38       37.994      78.340
point39       30.003      12.548
point40       74.887       6.923
point41       20.202       0.507
point42       26.961      49.985
point43       15.129      17.417
point44       33.064      31.691
point45       32.209      96.398
point46       99.360      36.990
point47       37.289      77.198
point48       39.668      91.310
point49       11.958      73.548
point50        5.542      57.630
point51        5.141       0.601
point52       40.123      51.988
point53       62.888      22.575
point54       39.612      27.601
point55       15.237      93.632
point56       42.266      13.466
point57       38.606      37.463
point58       26.848      94.837
point59       18.894      29.751
point60        7.455      40.135
point61       10.169      38.389
point62       32.409      19.213
point63       11.237      59.656
point64       51.145       4.507
point65       78.310      94.575
point66       59.646      60.734
point67       36.251      59.407
point68       67.985      50.659
point69       15.925      65.689
point70       52.388      12.440
point71       98.672      22.812
point72       67.565      77.678
point73       93.245      20.124
point74       29.714      19.723
point75       24.635      64.648
point76       73.497       8.544
point77       15.035      43.419
point78       18.694      69.269
point79       76.297      15.481
point80       38.938      69.543
point81       84.581      61.272
point82       97.597       2.689
point83       18.745       8.712
point84       54.040      12.686
point85       73.400      11.323
point86       48.835      79.560
point87       49.205      53.356
point88        1.062      54.387
point89       45.113      97.533
point90       18.385      16.353
point91        2.463      17.782
point92        6.132       1.664
point93       83.565      60.166
point94        2.702      19.609
point95       95.071      33.554
point96       59.426      25.919
point97       64.063      15.525
point98       46.002      39.334
point99       80.546      54.099
point100      39.072      55.782

Conopt Log

CONOPT 4         53.1.0 6a03d3b9 Feb 16, 2026          WEI x86 64bit/MS Window

 
 
    C O N O P T   version 4.39.0
    Copyright (C) GAMS Software GmbH
                  GAMS Development Corporation
 
    Will use up to 4 threads.
 
 
    The user model has 100 constraints and 3 variables
    with 300 Jacobian elements, 200 of which are nonlinear.
    The Hessian of the Lagrangian has 2 elements on the diagonal,
    0 elements below the diagonal, and 2 nonlinear variables.
 
    Iter Phase   Ninf   Infeasibility   RGmax      NSB   Step  InItr MX OK
       0   0          0.0000000000E+00 (Input point)
 
    There are 100 penalty and minimax constraints with 1 variables.
 
    Preprocessed model has 100 constraints and 3 variables
    with 300 Jacobian elements, 200 of which are nonlinear.
 
    Iter Phase   Ninf   Infeasibility   RGmax      NSB   Step  InItr MX OK
                      0.0000000000E+00 (Full preprocessed model)
                      0.0000000000E+00 (After scaling)
                      0.0000000000E+00 (After adjusting penalty variables)
 
 ** Feasible solution. Value of objective =    4809.27124686
 
    Iter Phase   Ninf     Objective     RGmax      NSB   Step  InItr MX OK
       1   3          3.8865468687E+03 1.9E+03       3 1.0E+00     2 T  T
       2   4          3.8865468687E+03 0.0E+00       0
 
 ** Optimal solution. There are no superbasic variables.

As this is a convex quadratic problem, we can formulate a conic model. This would allow us to solve the model with a different set of solvers. This exercise is always a bit of a chore, as the format of a SOCP-constraint (SOCP=Second-Order Cone Program) is very strict. Solvers expect an SOCP constraint of the form: \[\sum_i {\color{darkred}x}_i^2 \le {\color{darkred}y}^2\] with \({\color{darkred}x}_i\) free variables and \({\color{darkred}y}\ge 0\). So, following this to the letter, such a conic model can look like:

Conic model
\[\begin{align}\min\> & {\color{darkred}r} \\ & {\color{darkred}\Delta}_{i,k} = {\color{darkblue}p}_{i,k}-{\color{darkred}c}_k && \forall i \\ & \sum_k{\color{darkred}\Delta}_{i,k}^2 \le {\color{darkred}r}^2 &&  \forall i\\ & {\color{darkred}r}\ge 0\\ &{\color{darkred}\Delta}_{i,k} \>{\bf{free}}\\& i \in \{1,\dots,n\} \\ & k\in \{x,y\} \end{align}\]

It may be tempting to write \[\sum_k \left({\color{darkblue}p}_{i,k}-{\color{darked}c}_k \right)^2 \le {\color{darkred}r}^2\] but solvers will not accept this. We need to explicitly introduce auxiliary variables \({\color{darkred}\Delta}_{i,k}\). In addition, some solvers don't allow the same term \({\color{darkred}r}^2\) to be used in different cones, so we may actually need to write:

Conic model v2

\[\begin{align}\min\> & {\color{darkred}r} \\ & {\color{darkred}\Delta}_{i,k} = {\color{darkblue}p}_{i,k}-{\color{darkred}c}_k && \forall i \\ & {\color{darkred}s}_i = {\color{darkred}r} &&\forall i \\ & \sum_k{\color{darkred}\Delta}_{i,k}^2 \le {\color{darkred}s}_i^2 &&  \forall i\\ & {\color{darkred}r}\ge 0 \\ & {\color{darkred}s}_i \ge 0\\ &{\color{darkred}\Delta}_{i,k} \>{\bf{free}}\\& i \in \{1,\dots,n\} \\ & k\in \{x,y\} \end{align}\]

This model gives the same results as the NLP model. For conic models, just like for LP models, we don't really need an initial point. But, the modeling is a bit less natural, as we need to shoehorn the model into the exact format expected by the solver. This requires extra variables and constraints.

Obviously, we can reduce the number of points by only considering the convex hull. For the above data set with \(n=100\) points, the convex hull only has 14 points.

Initial and optimal circle using \(n=14\) convex hull points 

Complete GAMS Model

$ontext     Given n data points, find the smallest circle that contains all the points.   $offtext   option nlp=conopt, qcp=cplex;   * 0: use all data points * 1: use only convex hull $set convexhull 0   * 0: no plot * 1: produce html plot $set htmlplot 0   *----------------------------------------------------- * data *-----------------------------------------------------   set    i 'data points' /point1*point100/    k 'coordinates' /x,y/ ;    parameter p(i,k) 'data points'; p(i,k) = uniform(0,100); display p;   *----------------------------------------------------- * compute the convex hull *-----------------------------------------------------     set hull(i) 'convex hull';   $if %convexhull%==0 $goto skiphull   embeddedCode Python: import scipy as sp import numpy as np import gams.transfer as gt   print("Computing convex hull...")   i = list(gams.get("i")) p = gt.Container(gams.db)["p"].toDense() hull = sp.spatial.ConvexHull(p) h = [i[pt] for pt in hull.vertices] gams.set("hull",h) endEmbeddedCode hull   parameter numpoints(*) 'number of points'; numpoints('data points') = card(i); numpoints('convex hull') = card(hull); display numpoints,hull;   $label skiphull   set j(i) 'subset j of points i actually used in model'; $if %convexhull%==0 j(i) = yes; $if %convexhull%==1 j(hull) = yes;   *----------------------------------------------------- * model 1: nlp model *-----------------------------------------------------   variables    c(k)   'center'    r2     'squared radius' ;   equation inside(i) 'point i is inside circle';   inside(j).. sum(k, sqr(p(j,k)-c(k))) =l= r2;   * (very good) initial point c.l(k) = sum(j,p(j,k))/card(i); r2.l = smax(j,sum(k, sqr(p(j,k)-c.l(k))));   model m1 /inside/;   *----------------------------------------------------- * solve and reporting *-----------------------------------------------------   parameter results(*,*,*); results('c',k,'initial') = c.l(k); results('r','','initial') = sqrt(r2.l);   solve m1 minimizing r2 using nlp;   results('c',k,'nlp') = c.l(k); results('r','','nlp') = sqrt(r2.l); results('time','','nlp') = m1.resusd; results('iterations','','nlp') = m1.iterusd; display results;   *----------------------------------------------------- * model 2: conic model *-----------------------------------------------------   variable   r 'radius'   diff(i,k) 'p(i,k)-c(k)' ; r.lo = 0;   positive variable   s(i) 'needed for mosek' ;   equations    ediff(i,k) 'auxiliary constraint, needed for socp'    eaux(i)     'needed for mosek'    inside2(i)  'point i is inside circle' ;   ediff(j,k)..   diff(j,k) =e= p(j,k)-c(k); eaux(j)..      r =e= s(j); inside2(j)..   sum(k, sqr(diff(j,k))) =l= sqr(s(j));   model m2 /ediff,eaux,inside2/;   *----------------------------------------------------- * solve and reporting *-----------------------------------------------------   solve m2 minimizing r using qcp;   results('c',k,'socp') = c.l(k); results('r','','socp') = r.l; results('time','','socp') = m2.resusd; results('iterations','','socp') = m2.iterusd; display results;   *--------------------------------------------------------------------- * visualization *---------------------------------------------------------------------   $set html  plot.html $set data  data.js   $if %htmlplot%==0 $goto skipplot   parameter init(k), initr; init(k) = sum(j,p(j,k))/card(j); initr = sqrt(smax(j,sum(k, sqr(p(j,k)-init(k)))));     file fdata /%data%/; put fdata;   * points put "px=["; loop(j,put p(j,'x'):0:4,","); put "];"/; put "py=["; loop(j,put p(j,'y'):0:4,","); put "];"/; put "xa0=",(init('x')-initr):0:4,";"/; put "ya0=",(init('y')-initr):0:4,";"/; put "xa1=",(init('x')+initr):0:4,";"/; put "ya1=",(init('y')+initr):0:4,";"/; put "xb0=",(c.l('x')-r.l):0:4,";"/; put "yb0=",(c.l('y')-r.l):0:4,";"/; put "xb1=",(c.l('x')+r.l):0:4,";"/; put "yb1=",(c.l('y')+r.l):0:4,";"/;     $onecho > %html% <html> <script src="https://cdn.plot.ly/plotly-3.4.0.min.js" charset="utf-8"></script> <script src="%data%" charset="utf-8"></script> <h1>Smallest Encompassing Circle</h1> <div id="plotDiv"></div> <script> var data = {   x: px,   y: py,   mode: 'markers',   type: 'scatter',   name: 'data points' };   var layout = {   autosize: false,   width: 650,   height: 600,   showlegend: true,   shapes: [{type:'circle',             xref:'x',             yref:'y',             x0:xa0,             y0:ya0,             x1:xa1,             y1:ya1,             line:{color:'orange',width:2},             fillcolor:'rgba(0,0,0,0)'             },            {type:'circle',             xref:'x',             yref:'y',             x0:xb0,             y0:yb0,             x1:xb1,             y1:yb1,             line:{color:'purple',width:2},             fillcolor:'rgba(0,0,0,0)'             }           ]   } var trc = [data]; var options = {staticPlot: true, displayModeBar: false}; Plotly.newPlot('plotDiv', trc, layout, options); </script> </html> $offecho   executetool 'win32.ShellExecute "%html%"';   $label skipplot

 

2. Minimum enclosing ellipse

An ellipse represented by its center \(c\) and a positive definite matrix \(M\), can be defined by the set \[\{x|(x-c)^T M (x-c)\le 1\}\] Some special cases: when \(M=I\) we have a circle with radius \(r=1\). Using \(M=r^{-2}I\), we described a circle with radius \(r\). 

The area of this ellipse is \[\mathit{Area}=\frac{\pi}{\sqrt{{{\bf{det}}}M}}\] where \({\bf{det}}M\) is the determinant of \(M\). There is no easy, closed formula for the circumference (it is a complex elliptic integral). There are some good approximations however. 

A more convenient representation for an ellipse is[1]: \[\{x|\> ||A x+b|| \le 1\}\] again with \(A\) being positive definite. The area is \[\mathit{Area}=\frac{\pi}{{\bf{det}}A}\] Using this, the minimum enclosing ellipse problem can be stated as the following convex semi-definite programming problem: 

SDP Model
\[\begin{align}\max\> & \log {\bf{det}} {\color{darkred}A} \\ & || {\color{darkred}A} {\color{darkblue}p}_i + {\color{darkred}b} || \le 1 && \forall i\\ & {\color{darkred}A}\succeq 0 \end{align}\]

The wavy great-than-or-equal symbol \(\succeq\) indicates that \({\color{darkred}A}\) must be positive semidefinite. A slight relaxation from our earlier "positive definite." I am not worrying about that. The variable \({\color{darkred}b}\) is not the center. However we can recover the center by \[c:=-{\color{darkred}A}^{-1} {\color{darkred}b}\] This must be done in post-processing. It is not so easy to incorporate this into the model as a constraint, as this would introduce a non-convexity.

Derivation. We can go from the first to the second representation by taking \(M = A^TA\) and forming \((x-c)^T A^TA (x-c) = \left(A(x-c)\right)^T\left(A(x-c)\right) = ||Ax-Ac||^2\). We easily recognize \(-Ac=b\).

The \(\log {\bf{det}} {\color{darkred}A}\) objective is guaranteed to be concave. This way the model is proven to be convex and we can simply use CVXPY to solve this. CVXPY will only accept problems it can prove to be convex. Sometimes it will refuse models that are convex, but is unable to verify convexity. 

Example

First we generate \(n=50\) data points, drawn from a bivariate normal distribution. That should give us a data set that make sense to describe by an ellipse. Our data looks like:

The second step is optional: identify the convex hull. This will reduce the number of constraints in the optimization model.

The number of points we need to consider is now reduced from \(n=50\) to \(m=12\). We feed this into our optimization model, expressed in CVXPY:

d = 2 # dimension of the space
A = cp.Variable((d, d), PSD=True)
b = cp.Variable(d)

constraints = [cp.norm(A @ points2[i] + b) <= 1 for i in range(m)]

objective = cp.Maximize(cp.log_det(A))

prob = cp.Problem(objective, constraints)
prob.solve(verbose=True)

print(f"Optimal objective value: {prob.value}")
print(f"A:\n{A.value}")
print(f"b:\n{b.value}")
center = -np.linalg.inv(A.value) @ b.value
print(f"center:\n{center}")

As \({\color{darkred}A}\) is symmetric, we only have \(3+2=5\) variables in this CVXPY model. This is pretty compact. Obviously, CVXPY is almost designed for problems like this. So it makes sense that this looks good. We can see from the log that the actual size of the model that is fed to solver, is much larger than we thought:

problem: variables n: 19, constraints m: 55 cones: l: linear vars: 9    q: soc vars: 27, qsize: 9    s: psd vars: 13, ssize: 2    e: exp vars: 6, dual exp vars: 0

This behavior is quite common in when dealing with convex problems. Often auxiliary variables and constraints are needed.

After solving, we have:

The solution is:

Optimal objective value: -2.8896363124545594 A: [[ 0.2584063 -0.08959489] [-0.08959489 0.24621565]] b: [ 0.02996678 -0.1443177 ]

The area is 56.507.

CVXPY notebook

DIY SOCP Formulation 

Before we used CVXPY to do the heavy lifting and transform this into a SDP problem. Here, I'll try to develop a model we can solve with a solver like cplex: no SDP solver, but we can do a rotated second order cone.

For our 2d case, \({\color{darkred}A}\) is \(2\times 2\), so we can write \[{\bf{det}}{\color{darkred}A} = {\color{darkred}a}_{1,1} {\color{darkred}a}_{2,2} - {\color{darkred}a}_{1,2}^2\] The trick is to form: \[\max {\color{darkred}t},\> {\color{darkred}t}^2 + {\color{darkred}a}_{1,2}^2 \le {\color{darkred}a}_{1,1} {\color{darkred}a}_{2,2}\] This is a rotated cone. We need to add the bounds \({\color{darkred}a}_{1,1}, {\color{darkred}a}_{2,2} \ge 0\). This is related to requiring that \({\color{darkred}A}\) is positive definite.

The constraint \(||{\color{darkred}A} {\color{darkblue}p}_i +{\color{darkred}b}|| \le 1\) is ok. We just need to follow the accepted input format and write something like:  \({\color{darkred}\alpha}_{i,1}^2 +{\color{darkred}\alpha}_{i,2}^2  \le 1\) using auxiliary variables \({\color{darkred}\alpha}\). The complete model can look like:

SOCP Model

\[\begin{align}\max\> & {\color{darkred}t} \\ & {\color{darkred}t}^2 + {\color{darkred}a}_{1,2}^2 \le {\color{darkred}a}_{1,1} {\color{darkred}a}_{2,2} \\ & {\color{darkred}\alpha}_i = {\color{darkred}A}{\color{darkblue}p}_i + {\color{darkred}b} &&\forall i\\ & {\color{darkred}\alpha}_{i,1}^2 + {\color{darkred}\alpha}_{i,2}^2 \le 1 && \forall i \\ & {\color{darkred}a}_{1,1},{\color{darkred}a}_{2,2} \ge 0 \end{align}\]

This is a bit more tricky, and not that self-explanatory. When we feed this into GAMS/Cplex, we see:

----    118 VARIABLE a11.L                 =        0.258  
            VARIABLE a12.L                 =       -0.090  
            VARIABLE a22.L                 =        0.246  

----    118 VARIABLE b.L  

x  0.030,    y -0.144


----    118 VARIABLE t.L                   =        0.236  objective
            PARAMETER detA                 =        0.056  determinant of A
            PARAMETER area                 =       56.507  

GAMS Model

$onText        min area = π/det(A)    ||Ap + b || <= 1    A pos def   1. A is symmetric, so we just use a11,a12,a22   2. Objective    replace obj by max sqrt(det(A))    then we can form max t, t^2 + a12^2 <= a11*a22, a11,a22>=0    this is a rotated second order cone   3. ||Ap + b|| <= 1 is ok: it is convex.    Use intermediate variables to convey this to the solver.    4. A is pos.def.    Constraints: a11,a22 >= 0                 a11*a22 - a12^2 >= 0    This is already taken care of by 2.               $offText    option qcp = cplex;   *---------------------------------------------------------------------- * data *----------------------------------------------------------------------   set   i 'points' /point1*point50/   c  'coordinates' /x,y/   h(i) 'subset: convex hull' ;   parameter p(i,c) 'points';     $onEmbeddedCode Python:   # returns #    points p(i,c) drawn from bivariate normal distribution #    subset h(i)   points that are part of the convex hull   import numpy as np import scipy as sp   seti = list(gams.get("i")) n = len(seti) setc = list(gams.get("c"))   seed = 1234 print(f"{n=} {seed=}")   μ = np.array([0, 0]) Σ = np.array([[5, 4.5], [4.5, 6]])   rng = np.random.default_rng(seed) points = rng.multivariate_normal(μ, Σ, size=n)   gams.set("p",[(seti[i],setc[j],points[i,j]) for i in range(n) for j in range(2)])   ipoints2 = sp.spatial.ConvexHull(points).vertices gams.set("h",[(seti[i]) for i in ipoints2])   $offEmbeddedCode p h   display p,h;   set j(i) 'used points'; *j(i) = yes; j(h) = yes;   *---------------------------------------------------------------------- * socp model *----------------------------------------------------------------------   variable    t 'objective' * matrix A is 2x2 and symmetric      a11,a12,a22    ap1(i),ap2(i)    b(c) ; * diagonal elements of A should be >= 0 positive variable a11,a22;   equations    rcone       'rotated cone for objective'    q(i)        '||Ap+b||<=1'    defap1(i)   'first element of Ap+b'    defap2(i)   'second element of Ap+b' ;   rcone..        sqr(t) + sqr(a12) =l= a11*a22;   defap1(i)..    ap1(i) =e= a11*p(i,'x')+a12*p(i,'y') + b('x'); defap2(i)..    ap2(i) =e= a12*p(i,'x')+a22*p(i,'y') + b('y'); q(i)..         sqr(ap1(i)) + sqr(ap2(i)) =l= 1;   model m /all/;   solve m maximizing t using qcp;   *---------------------------------------------------------------------- * reporting *----------------------------------------------------------------------   scalar   detA 'determinant of A'   area ;   detA = a11.l*a22.l-sqr(a12.l); area = pi / detA;   display a11.l,a12.l,a22.l,b.l,t.l,detA,area;

 

Solve with NLP solver

In order to solve this problem it makes sense to find a good starting point. I don't know how to find a reasonable initial ellipse. However, I know how to find a good initial circle (see our earlier section on the smallest circle problem). Claim: a good initial circle is also a good starting point for the problem of finding the smallest enclosing ellipse.

The first version is based on the representation \(\{x|(x-c)^T M (x-c)\le 1\}\). The NLP model can look like:  

NLP Model 1

\[\begin{align}\max\> & {\color{darkred}z} = {\bf{det}} {\color{darkred}M} \\ & {\color{darkred}d}_i = {\color{darkblue}p}_i  - {\color{darkred}c} && \forall i \\ & {\color{darkred}d}_i^T {\color{darkred}M} {\color{darkred}d}_i \le 1 && \forall i \\ &{\color{darkred}M}\, \text{symmetric} \\& {\color{darkred}c}^0 := \frac{1}{n}\sum_i {\color{darkblue}p}_i  \\&  {\color{darkblue}}r^2 := \max_i  ||{\color{darkblue}p}_{i}-{\color{darkred}c}^0 ||^2 \\ &  {\color{darkred}M}^0 := {\color{darkblue}r}^{-2}I  \end{align}\]

The second version is using the representation \(\{x|\> ||Ax+b|| \le 1\}\).  

NLP Model 2

\[\begin{align}\max\> & {\color{darkred}z} = {\bf{det}} {\color{darkred}A} \\ & || {\color{darkred}A}  {\color{darkblue}p}_i + {\color{darkred}b} ||^2 \le 1 && \forall i \\ &{\color{darkred}A}\, \text{symmetric} \\& {\color{darkblue}c} := \frac{1}{n}\sum_i {\color{darkblue}p}_i  \\&  {\color{darkblue}}r^2 := \max_i  ||{\color{darkblue}p}_{i}-{\color{darkblue}c} ||^2 \\ &  {\color{darkred}A}^0 := {\color{darkblue}r}^{-1}I \\& {\color{darkred}b}^0  := -{\color{darkred}A}^0{\color{darkblue}c}\end{align}\]

These models solve quite easily, even though the nonlinearities are not trivial. This must be because the starting point is relatively ok. 

GAMS models

$onText     Solve smallest ellipse problem using an NLP solver   Use same starting point as smallest circle problem   $offText   option nlp = conopt;   *---------------------------------------------------------------------- * data *----------------------------------------------------------------------   set   i 'points' /point1*point50/   c  'coordinates' /x,y/   h(i) 'subset: convex hull' ;   parameter p(i,c) 'points';     $onEmbeddedCode Python:   # returns #    points p(i,c) drawn from bivariate normal distribution #    subset h(i)   points that are part of the convex hull   import numpy as np import scipy as sp   seti = list(gams.get("i")) n = len(seti) setc = list(gams.get("c"))   seed = 1234 print(f"{n=} {seed=}")   μ = np.array([0, 0]) Σ = np.array([[5, 4.5], [4.5, 6]])   rng = np.random.default_rng(seed) points = rng.multivariate_normal(μ, Σ, size=n)   gams.set("p",[(seti[i],setc[j],points[i,j]) for i in range(n) for j in range(2)])   ipoints2 = sp.spatial.ConvexHull(points).vertices gams.set("h",[(seti[i]) for i in ipoints2])   $offEmbeddedCode p h   display p,h;   set j(i) 'used points'; *j(i) = yes; j(h) = yes;     *---------------------------------------------------------------------- * initial circle *----------------------------------------------------------------------   alias (c,cc); parameter    ic(c) 'initial center'    ir2   'squared initial radius' ;   ic(c) = sum(j,p(j,c))/card(j); ir2 = smax(j,sum(c, sqr(p(j,c)-ic(c)))); display ic,ir2;   *---------------------------------------------------------------------- * formulation 1 * max det(A) * s.t. (p-c)'A(p-c) <= 1 *----------------------------------------------------------------------   variable z; positive variable a11,a22; variable a12, center(c), pc(i,c);   * initial values A a11.l = 1/ir2; a22.l = 1/ir2; a12.l = 0; z.l = a11.l*a22.l-sqr(a12.l);   * initial values center center.l(c) = ic(c); pc.l(i,c) = p(i,c) - center.l(c);   Equations    determinant 'det(A)'    pminc(i,c)  'p(i)-c'    pinside(i)  'point p is inside ellipse' ;   determinant..  z =e= a11*a22-sqr(a12); pminc(i,c)..   pc(i,c) =e= p(i,c)-center(c); pinside(i)..   a11*sqr(pc(i,'x'))+a22*sqr(pc(i,'y'))+2*a12*pc(i,'x')*pc(i,'y') =l= 1;   model m1 /all/; solve m1 maximizing z using nlp;   display center.l,a11.l,a22.l,a12.l,z.l; scalar Area; Area = pi/sqrt(z.l); display Area;   *---------------------------------------------------------------------- * formulation 2 * max det(A) * s.t. ||Ap+b|| <= 1 *----------------------------------------------------------------------   variable ap1(i),ap2(i); variable b(c);   * initial values A a11.l = 1/sqrt(ir2); a22.l = 1/sqrt(ir2); a12.l = 0; z.l = a11.l*a22.l-sqr(a12.l);   * initial values b = -A*center b.l('x') = -a11.l*ic('x')-a12.l*ic('y'); b.l('y') = -a12.l*ic('x')-a22.l*ic('y');   * initial values ap = Ap+b ap1.l(i) = a11.l*p(i,'x')+a12.l*p(i,'y') + b.l('x'); ap2.l(i) = a12.l*p(i,'x')+a22.l*p(i,'y') + b.l('y');   equations    defap1(i)   'first element of Ap+b'    defap2(i)   'second element of Ap+b'    pinside2(i) ;     defap1(i)..     ap1(i) =e= a11*p(i,'x')+a12*p(i,'y') + b('x'); defap2(i)..     ap2(i) =e= a12*p(i,'x')+a22*p(i,'y') + b('y'); pinside2(i)..   sqr(ap1(i)) + sqr(ap2(i)) =l= 1;     model m2 /determinant,defap1,defap2,pinside2/; solve m2 maximizing z using nlp;   display a11.l,a22.l,a12.l,b.l,z.l; scalar Area; Area = pi/z.l; display Area;

 

  

References

1. Stephen Boyd, Lieven Vandenberghe, Convex Optimization, section 8.4., https://web.stanford.edu/~boyd/cvxbook/bv_cvxbook.pdf.