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coneprog

Second-order cone programming solver

Since R2020b

Description

The coneprog function is a second-order cone programming solver that finds the minimum of a problem specified by

minxfTx

subject to the constraints

Asc(i)xbsc(i)dscT(i)xγ(i)AxbAeqx=beqlbxub.

f, x, b, beq, lb, and ub are vectors, and A and Aeq are matrices. For each i, the matrix Asc(i), vectors dsc(i) and bsc(i), and scalar γ(i) are in a second-order cone constraint that you create using secondordercone.

For more details about cone constraints, see Second-Order Cone Constraint.

example

x = coneprog(f,socConstraints) solves the second-order cone programming problem with the constraints in socConstraints encoded as

  • Asc(i) = socConstraints(i).A

  • bsc(i) = socConstraints(i).b

  • dsc(i) = socConstraints(i).d

  • γ(i) = socConstraints(i).gamma

example

x = coneprog(f,socConstraints,A,b,Aeq,beq) solves the problem subject to the inequality constraints A*x  b and equality constraints Aeq*x = beq. Set A = [] and b = [] if no inequalities exist.

example

x = coneprog(f,socConstraints,A,b,Aeq,beq,lb,ub) defines a set of lower and upper bounds on the design variables, x so that the solution is always in the range lb ≤ x ≤ ub. Set Aeq = [] and beq = [] if no equalities exist.

example

x = coneprog(f,socConstraints,A,b,Aeq,beq,lb,ub,options) minimizes using the optimization options specified by options. Use optimoptions to set these options.

example

x = coneprog(problem) finds the minimum for problem, a structure described in problem.

example

[x,fval] = coneprog(___) also returns the objective function value at the solution fval = f'*x, using any of the input argument combinations in previous syntaxes.

example

[x,fval,exitflag,output] = coneprog(___) additionally returns a value exitflag that describes the exit condition, and a structure output that contains information about the optimization process.

example

[x,fval,exitflag,output,lambda] = coneprog(___) additionally returns a structure lambda whose fields contain the dual variables at the solution x.

Examples

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To set up a problem with a second-order cone constraint, create a second-order cone constraint object.

A = diag([1,1/2,0]);
b = zeros(3,1);
d = [0;0;1];
gamma = 0;
socConstraints = secondordercone(A,b,d,gamma);

Create an objective function vector.

f = [-1,-2,0];

The problem has no linear constraints. Create empty matrices for these constraints.

Aineq = [];
bineq = [];
Aeq = [];
beq = [];

Set upper and lower bounds on x(3).

lb = [-Inf,-Inf,0];
ub = [Inf,Inf,2];

Solve the problem by using the coneprog function.

[x,fval] = coneprog(f,socConstraints,Aineq,bineq,Aeq,beq,lb,ub)
Optimal solution found.
x = 3×1

    0.4851
    3.8806
    2.0000

fval = -8.2462

The solution component x(3) is at its upper bound. The cone constraint is active at the solution:

norm(A*x-b) - d'*x % Near 0 when the constraint is active
ans = -2.5677e-08

To set up a problem with several second-order cone constraints, create an array of constraint objects. To save time and memory, create the highest-index constraint first.

A = diag([1,2,0]);
b = zeros(3,1);
d = [0;0;1];
gamma = -1;
socConstraints(3) = secondordercone(A,b,d,gamma);

A = diag([3,0,1]);
d = [0;1;0];
socConstraints(2) = secondordercone(A,b,d,gamma);

A = diag([0;1/2;1/2]);
d = [1;0;0];
socConstraints(1) = secondordercone(A,b,d,gamma);

Create the linear objective function vector.

f = [-1;-2;-4];

Solve the problem by using the coneprog function.

[x,fval] = coneprog(f,socConstraints)
Optimal solution found.
x = 3×1

    0.4238
    1.6477
    2.3225

fval = -13.0089

Specify an objective function vector and a single second-order cone constraint.

f = [-4;-9;-2];
Asc = diag([1,4,0]);
b = [0;0;0];
d = [0;0;1];
gamma = 0;
socConstraints = secondordercone(Asc,b,d,gamma);

Specify a linear inequality constraint.

A = [1/4,1/9,1];
b = 5;

Solve the problem.

[x,fval] = coneprog(f,socConstraints,A,b)
Optimal solution found.
x = 3×1

    3.2304
    0.6398
    4.1213

fval = -26.9225

To observe the iterations of the coneprog solver, set the Display option to 'iter'.

options = optimoptions('coneprog','Display','iter');

Create a second-order cone programming problem and solve it using options.

Asc = diag([1,1/2,0]);
b = zeros(3,1);
d = [0;0;1];
gamma = 0;
socConstraints = secondordercone(Asc,b,d,gamma);
f = [-1,-2,0];
Aineq = [];
bineq = [];
Aeq = [];
beq = [];
lb = [-Inf,-Inf,0];
ub = [Inf,Inf,2];
[x,fval] = coneprog(f,socConstraints,Aineq,bineq,Aeq,beq,lb,ub,options)
Iter           Fval  Primal Infeas    Dual Infeas    Duality Gap    Time
   0   0.000000e+00   0.000000e+00   5.714286e-01   1.250000e-01    0.01
   1  -7.558066e+00   0.000000e+00   7.151114e-02   1.564306e-02    0.02
   2  -7.366973e+00   0.000000e+00   1.075440e-02   2.352525e-03    0.02
   3  -8.243432e+00   0.000000e+00   5.191882e-05   1.135724e-05    0.02
   4  -8.246067e+00   0.000000e+00   2.430813e-06   5.317403e-07    0.02
   5  -8.246211e+00   0.000000e+00   6.154504e-09   1.346298e-09    0.02
Optimal solution found.
x = 3×1

    0.4851
    3.8806
    2.0000

fval = -8.2462

Create the elements of a second-order cone programming problem. To save time and memory, create the highest-index constraint first.

A = diag([1,2,0]);
b = zeros(3,1);
d = [0;0;1];
gamma = -1;
socConstraints(3) = secondordercone(A,b,d,gamma);
A = diag([3,0,1]);
d = [0;1;0];
socConstraints(2) = secondordercone(A,b,d,gamma);
A = diag([0;1/2;1/2]);
d = [1;0;0];
socConstraints(1) = secondordercone(A,b,d,gamma);
f = [-1;-2;-4];
options = optimoptions('coneprog','Display','iter');

Create a problem structure with the required fields, as described in problem.

problem = struct('f',f,...
    'socConstraints',socConstraints,...
    'Aineq',[],'bineq',[],...
    'Aeq',[],'beq',[],...
    'lb',[],'ub',[],...
    'solver','coneprog',...
    'options',options);

Solve the problem by calling coneprog.

[x,fval] = coneprog(problem)
Iter           Fval  Primal Infeas    Dual Infeas    Duality Gap    Time
   0   0.000000e+00   0.000000e+00   5.333333e-01   5.555556e-02    0.02
   1  -9.696012e+00   5.551115e-17   7.631901e-02   7.949897e-03    0.02
   2  -1.178942e+01   0.000000e+00   1.261803e-02   1.314378e-03    0.02
   3  -1.294426e+01   9.251859e-18   1.683078e-03   1.753206e-04    0.02
   4  -1.295217e+01   9.251859e-18   8.994595e-04   9.369370e-05    0.02
   5  -1.295331e+01   0.000000e+00   4.748841e-04   4.946709e-05    0.02
   6  -1.300753e+01   0.000000e+00   2.799942e-05   2.916606e-06    0.03
   7  -1.300671e+01   9.251859e-18   2.366136e-05   2.464725e-06    0.03
   8  -1.300850e+01   9.251859e-18   8.251573e-06   8.595388e-07    0.03
   9  -1.300842e+01   4.625929e-18   7.332583e-06   7.638108e-07    0.03
  10  -1.300866e+01   9.251859e-18   2.616719e-06   2.725749e-07    0.03
  11  -1.300892e+01   1.850372e-17   2.215835e-08   2.308161e-09    0.03
Optimal solution found.
x = 3×1

    0.4238
    1.6477
    2.3225

fval = -13.0089

Create a second-order cone programming problem. To save time and memory, create the highest-index constraint first.

A = diag([1,2,0]);
b = zeros(3,1);
d = [0;0;1];
gamma = -1;
socConstraints(3) = secondordercone(A,b,d,gamma);
A = diag([3,0,1]);
d = [0;1;0];
socConstraints(2) = secondordercone(A,b,d,gamma);
A = diag([0;1/2;1/2]);
d = [1;0;0];
socConstraints(1) = secondordercone(A,b,d,gamma);
f = [-1;-2;-4];
options = optimoptions('coneprog','Display','iter');
A = [];
b = [];
Aeq = [];
beq = [];
lb = [];
ub = [];

Solve the problem, requesting information about the solution process.

[x,fval,exitflag,output] = coneprog(f,socConstraints,A,b,Aeq,beq,lb,ub,options)
Iter           Fval  Primal Infeas    Dual Infeas    Duality Gap    Time
   0   0.000000e+00   0.000000e+00   5.333333e-01   5.555556e-02    0.05
   1  -9.696012e+00   5.551115e-17   7.631901e-02   7.949897e-03    0.07
   2  -1.178942e+01   0.000000e+00   1.261803e-02   1.314378e-03    0.07
   3  -1.294426e+01   9.251859e-18   1.683078e-03   1.753206e-04    0.07
   4  -1.295217e+01   9.251859e-18   8.994595e-04   9.369370e-05    0.07
   5  -1.295331e+01   0.000000e+00   4.748841e-04   4.946709e-05    0.07
   6  -1.300753e+01   0.000000e+00   2.799942e-05   2.916606e-06    0.07
   7  -1.300671e+01   9.251859e-18   2.366136e-05   2.464725e-06    0.07
   8  -1.300850e+01   9.251859e-18   8.251573e-06   8.595388e-07    0.07
   9  -1.300842e+01   4.625929e-18   7.332583e-06   7.638108e-07    0.07
  10  -1.300866e+01   9.251859e-18   2.616719e-06   2.725749e-07    0.07
  11  -1.300892e+01   1.850372e-17   2.215835e-08   2.308161e-09    0.07
Optimal solution found.
x = 3×1

    0.4238
    1.6477
    2.3225

fval = -13.0089
exitflag = 1
output = struct with fields:
           iterations: 11
    primalfeasibility: 1.8504e-17
      dualfeasibility: 2.2158e-08
           dualitygap: 2.3082e-09
            algorithm: 'interior-point'
         linearsolver: 'augmented'
              message: 'Optimal solution found.'

  • Both the iterative display and the output structure show that coneprog used 12 iterations to arrive at the solution.

  • The exit flag value 1 and the output.message value 'Optimal solution found.' indicate that the solution is reliable.

  • The output structure shows that the infeasibilities tend to decrease through the solution process, as does the duality gap.

  • You can reproduce the fval output by multiplying f'*x.

f'*x
ans = -13.0089

Create a second-order cone programming problem. To save time and memory, create the highest-index constraint first.

A = diag([1,2,0]);
b = zeros(3,1);
d = [0;0;1];
gamma = -1;
socConstraints(3) = secondordercone(A,b,d,gamma);
A = diag([3,0,1]);
d = [0;1;0];
socConstraints(2) = secondordercone(A,b,d,gamma);
A = diag([0;1/2;1/2]);
d = [1;0;0];
socConstraints(1) = secondordercone(A,b,d,gamma);
f = [-1;-2;-4];

Solve the problem, requesting dual variables at the solution along with all other coneprog output..

[x,fval,exitflag,output,lambda] = coneprog(f,socConstraints);
Optimal solution found.

Examine the returned lambda structure. Because the only problem constraints are cone constraints, examine only the soc field in the lambda structure.

disp(lambda.soc)
    5.9426
    4.6039
    2.4624

The constraints have nonzero dual values, indicating the constraints are active at the solution.

Input Arguments

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Coefficient vector, specified as a real vector or real array. The coefficient vector represents the objective function f'*x. The notation assumes that f is a column vector, but you can use a row vector or array. Internally, coneprog converts f to the column vector f(:).

Example: f = [1,3,5,-6]

Data Types: double

Second-order cone constraints, specified as vector of SecondOrderConeConstraint objects. Create these objects using the secondordercone function.

socConstraints encodes the constraints

Asc(i)xbsc(i)dscT(i)xγ(i)

where the mapping between the array and the equation is as follows:

  • Asc(i) = socConstraints.A(i)

  • bsc(i) = socConstraints.b(i)

  • dsc(i) = socConstraints.d(i)

  • γ(i) = socConstraints.gamma(i)

Example: Asc = diag([1 1/2 0]); bsc = zeros(3,1); dsc = [0;0;1]; gamma = -1; socConstraints = secondordercone(Asc,bsc,dsc,gamma);

Data Types: struct

Linear inequality constraints, specified as a real matrix. A is an M-by-N matrix, where M is the number of inequalities, and N is the number of variables (length of f). For large problems, pass A as a sparse matrix.

A encodes the M linear inequalities

A*x <= b,

where x is the column vector of N variables x(:), and b is a column vector with M elements.

For example, consider these inequalities:

x1 + 2x2 ≤ 10
3x1 + 4x2 ≤ 20
5x1 + 6x2 ≤ 30.

Specify the inequalities by entering the following constraints.

A = [1,2;3,4;5,6];
b = [10;20;30];

Example: To specify that the x-components add up to 1 or less, take A = ones(1,N) and b = 1.

Data Types: double

Linear inequality constraints, specified as a real vector. b is an M-element vector related to the A matrix. If you pass b as a row vector, solvers internally convert b to the column vector b(:). For large problems, pass b as a sparse vector.

b encodes the M linear inequalities

A*x <= b,

where x is the column vector of N variables x(:), and A is a matrix of size M-by-N.

For example, consider these inequalities:

x1 + 2x2 ≤ 10
3x1 + 4x2 ≤ 20
5x1 + 6x2 ≤ 30.

Specify the inequalities by entering the following constraints.

A = [1,2;3,4;5,6];
b = [10;20;30];

Example: To specify that the x components sum to 1 or less, use A = ones(1,N) and b = 1.

Data Types: double

Linear equality constraints, specified as a real matrix. Aeq is an Me-by-N matrix, where Me is the number of equalities, and N is the number of variables (length of f). For large problems, pass Aeq as a sparse matrix.

Aeq encodes the Me linear equalities

Aeq*x = beq,

where x is the column vector of N variables x(:), and beq is a column vector with Me elements.

For example, consider these equalities:

x1 + 2x2 + 3x3 = 10
2x1 + 4x2 + x3 = 20.

Specify the equalities by entering the following constraints.

Aeq = [1,2,3;2,4,1];
beq = [10;20];

Example: To specify that the x-components sum to 1, take Aeq = ones(1,N) and beq = 1.

Data Types: double

Linear equality constraints, specified as a real vector. beq is an Me-element vector related to the Aeq matrix. If you pass beq as a row vector, solvers internally convert beq to the column vector beq(:). For large problems, pass beq as a sparse vector.

beq encodes the Me linear equalities

Aeq*x = beq,

where x is the column vector of N variables x(:), and Aeq is a matrix of size Me-by-N.

For example, consider these equalities:

x1 + 2x2 + 3x3 = 10
2x1 + 4x2 + x3 = 20.

Specify the equalities by entering the following constraints.

Aeq = [1,2,3;2,4,1];
beq = [10;20];

Example: To specify that the x components sum to 1, use Aeq = ones(1,N) and beq = 1.

Data Types: double

Lower bounds, specified as a real vector or real array. If the length of f is equal to the length of lb, then lb specifies that

x(i) >= lb(i) for all i.

If numel(lb) < numel(f), then lb specifies that

x(i) >= lb(i) for 1 <= i <= numel(lb).

In this case, solvers issue a warning.

Example: To specify that all x-components are positive, use lb = zeros(size(f)).

Data Types: double

Upper bounds, specified as a real vector or real array. If the length of f is equal to the length of ub, then ub specifies that

x(i) <= ub(i) for all i.

If numel(ub) < numel(f), then ub specifies that

x(i) <= ub(i) for 1 <= i <= numel(ub).

In this case, solvers issue a warning.

Example: To specify that all x-components are less than 1, use ub = ones(size(f)).

Data Types: double

Optimization options, specified as the output of optimoptions.

OptionDescription
ConstraintTolerance

Feasibility tolerance for constraints, a scalar from 0 through 1. ConstraintTolerance measures primal feasibility tolerance. The default is 1e-6.

Display

Level of display (see Iterative Display):

  • 'final' (default) displays only the final output.

  • 'iter' displays output at each iteration.

  • 'off' or 'none' displays no output.

LinearSolver

Algorithm for solving one step in the iteration:

  • 'auto' (default) — coneprog chooses the step solver.

    • If the problem is sparse, the step solver is 'prodchol'.

    • Otherwise, the step solver is 'augmented'.

  • 'augmented' — Augmented form step solver. See [1].

  • 'normal' — Normal form step solver. See [1].

  • 'normal-dense' — Normal form step solver using dense linear algebra.

  • 'prodchol' — Product form Cholesky step solver. See [4] and [5].

  • 'schur' — Schur complement method step solver. See [2].

If 'auto' does not perform well, try these suggestions for LinearSolver:

  • If the problem is sparse, try 'normal'.

  • If the problem is sparse with some dense columns or large cones, try 'prodchol' or 'schur'.

  • If the problem is dense, use 'normal-dense' or 'augmented'.

For a sparse example, see Compare Speeds of coneprog Algorithms.

MaxIterations

Maximum number of iterations allowed, a nonnegative integer. The default is 200.

See Tolerances and Stopping Criteria and Iterations and Function Counts.

MaxTime

Maximum amount of time in seconds that the algorithm runs, a nonnegative number or Inf. The default is Inf, which disables this stopping criterion.

OptimalityTolerance

Termination tolerance on the dual feasibility, a nonnegative scalar. The default is 1e-6.

Example: optimoptions('coneprog','Display','iter','MaxIterations',100)

Problem structure, specified as a structure with the following fields.

Field NameEntry

f

Linear objective function vector f

socConstraints

Structure array of second-order cone constraints

Aineq

Matrix of linear inequality constraints

bineq

Vector of linear inequality constraints

Aeq

Matrix of linear equality constraints

beq

Vector of linear equality constraints
lbVector of lower bounds
ubVector of upper bounds

solver

'coneprog'

options

Options created with optimoptions

Data Types: struct

Output Arguments

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Solution, returned as a real vector or real array. The size of x is the same as the size of f. The x output is empty when the exitflag value is –2, –3, or –10.

Objective function value at the solution, returned as a real number. Generally, fval = f'*x. The fval output is empty when the exitflag value is –2, –3, or –10.

Reason coneprog stopped, returned as an integer.

ValueDescription

1

The function converged to a solution x.

0

The number of iterations exceeded options.MaxIterations, or the solution time in seconds exceeded options.MaxTime.

-2

No feasible point was found.

-3

The problem is unbounded.

-7

The search direction became too small. No further progress could be made.

-10

The problem is numerically unstable.

Tip

If you get exit flag 0, -7, or -10, try using a different value of the LinearSolver option.

Information about the optimization process, returned as a structure with these fields.

FieldDescription
algorithm

Optimization algorithm used

dualfeasibility

Maximum of dual constraint violations

dualitygap

Duality gap

iterations

Number of iterations

message

Exit message

primalfeasibility

Maximum of constraint violations

linearsolverInternal step solver algorithm used

The output fields dualfeasibility, dualitygap, and primalfeasibility are empty when the exitflag value is –2, –3, or –10.

Dual variables at the solution, returned as a structure with these fields.

FieldDescription
lower

Lower bounds corresponding to lb

upper

Upper bounds corresponding to ub

ineqlin

Linear inequalities corresponding to A and b

eqlin

Linear equalities corresponding to Aeq and beq

socSecond-order cone constraints corresponding to socConstraints

lambda is empty ([]) when the exitflag value is –2, –3, or –10.

The Lagrange multipliers (dual variables) are part of the following Lagrangian, which is stationary (zero gradient) at a solution:

fTx+iλsoc(i)(Asoc(i)xbsoc(i)dsocT(i)x+gamma(i))      +λineqlinT(Axb)+λeqlinT(Aeqxbeq)+λupperT(xub)+λlowerT(lbx).

More About

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Second-Order Cone Constraint

Why is the constraint

AxbdTxγ

called a second-order cone constraint? Consider a cone in 3-D space with elliptical cross-sections in the x-y plane, and a diameter proportional to the z coordinate. The y coordinate has scale ½, and the x coordinate has scale 1. The inequality defining the inside of this cone with its point at [0,0,0] is

x2+y24z.

In the coneprog syntax, this cone has the following arguments.

A = diag([1 1/2 0]);
b = [0;0;0];
d = [0;0;1];
gamma = 0;

Plot the boundary of the cone.

[X,Y] = meshgrid(-2:0.1:2);
Z = sqrt(X.^2 + Y.^2/4);
surf(X,Y,Z)
view(8,2)
xlabel 'x'
ylabel 'y'
zlabel 'z'

Cone with point at zero, widening in the vertical direction.

The b and gamma arguments move the cone. The A and d arguments rotate the cone and change its shape.

Algorithms

The algorithm uses an interior-point method. For details, see Second-Order Cone Programming Algorithm.

Alternative Functionality

App

The Optimize Live Editor task provides a visual interface for coneprog.

Version History

Introduced in R2020b

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