49

I use scipy.optimize to minimize a function of 12 arguments.

I started the optimization a while ago and still waiting for results.

Is there a way to force scipy.optimize to display its progress (like how much is already done, what are the current best point)?

  • 4
    Have you checked callback parameter of your minimization function? – mg007 May 24 '13 at 19:31
  • For another approach without callback, see Funcgradmon. It saves all x f g values, then can write them to a file for plotting. – denis Oct 15 '16 at 16:35
34
0

As mg007 suggested, some of the scipy.optimize routines allow for a callback function (unfortunately leastsq does not permit this at the moment). Below is an example using the "fmin_bfgs" routine where I use a callback function to display the current value of the arguments and the value of the objective function at each iteration.

import numpy as np
from scipy.optimize import fmin_bfgs

Nfeval = 1

def rosen(X): #Rosenbrock function
    return (1.0 - X[0])**2 + 100.0 * (X[1] - X[0]**2)**2 + \
           (1.0 - X[1])**2 + 100.0 * (X[2] - X[1]**2)**2

def callbackF(Xi):
    global Nfeval
    print '{0:4d}   {1: 3.6f}   {2: 3.6f}   {3: 3.6f}   {4: 3.6f}'.format(Nfeval, Xi[0], Xi[1], Xi[2], rosen(Xi))
    Nfeval += 1

print  '{0:4s}   {1:9s}   {2:9s}   {3:9s}   {4:9s}'.format('Iter', ' X1', ' X2', ' X3', 'f(X)')   
x0 = np.array([1.1, 1.1, 1.1], dtype=np.double)
[xopt, fopt, gopt, Bopt, func_calls, grad_calls, warnflg] = \
    fmin_bfgs(rosen, 
              x0, 
              callback=callbackF, 
              maxiter=2000, 
              full_output=True, 
              retall=False)

The output looks like this:

Iter    X1          X2          X3         f(X)      
   1    1.031582    1.062553    1.130971    0.005550
   2    1.031100    1.063194    1.130732    0.004973
   3    1.027805    1.055917    1.114717    0.003927
   4    1.020343    1.040319    1.081299    0.002193
   5    1.005098    1.009236    1.016252    0.000739
   6    1.004867    1.009274    1.017836    0.000197
   7    1.001201    1.002372    1.004708    0.000007
   8    1.000124    1.000249    1.000483    0.000000
   9    0.999999    0.999999    0.999998    0.000000
  10    0.999997    0.999995    0.999989    0.000000
  11    0.999997    0.999995    0.999989    0.000000
Optimization terminated successfully.
         Current function value: 0.000000
         Iterations: 11
         Function evaluations: 85
         Gradient evaluations: 17

At least this way you can watch as the optimizer tracks the minimum

| improve this answer | |
  • 13
    this seems super inefficient. you have to call the optimization function again in the callback? does adding the callback this way make the optimization go twice as slow? – dbliss Jul 5 '16 at 5:48
  • 1
    I tried this and it seems the callback function is not called at all. The code runs the simulation, but callback does not print anything. Should it pass the values of x in my objective function to callbackF(Xi)? – user3015729 Jan 4 '19 at 16:08
  • @joel: does it print at each iteration, for you? I mean, without waiting for convergence? as this seems to be the main issue also with disp --> (see below) stackoverflow.com/a/47171025/5533078. -- thanks – jjrr Jun 15 '19 at 17:48
9
0

Following @joel's example, there is a neat and efficient way to do the similar thing. Following example show how can we get rid of global variables, call_back functions and re-evaluating target function multiple times.

import numpy as np
from scipy.optimize import fmin_bfgs

def rosen(X, info): #Rosenbrock function
    res = (1.0 - X[0])**2 + 100.0 * (X[1] - X[0]**2)**2 + \
           (1.0 - X[1])**2 + 100.0 * (X[2] - X[1]**2)**2


    # display information
    if info['Nfeval']%100 == 0:
        print '{0:4d}   {1: 3.6f}   {2: 3.6f}   {3: 3.6f}   {4: 3.6f}'.format(info['Nfeval'], X[0], X[1], X[2], res)
    info['Nfeval'] += 1
    return res

print  '{0:4s}   {1:9s}   {2:9s}   {3:9s}   {4:9s}'.format('Iter', ' X1', ' X2', ' X3', 'f(X)')   
x0 = np.array([1.1, 1.1, 1.1], dtype=np.double)
[xopt, fopt, gopt, Bopt, func_calls, grad_calls, warnflg] = \
    fmin_bfgs(rosen, 
              x0, 
              args=({'Nfeval':0},), 
              maxiter=1000, 
              full_output=True, 
              retall=False,
              )

This will generate output like

Iter    X1          X2          X3         f(X)     
   0    1.100000    1.100000    1.100000    2.440000
 100    1.000000    0.999999    0.999998    0.000000
 200    1.000000    0.999999    0.999998    0.000000
 300    1.000000    0.999999    0.999998    0.000000
 400    1.000000    0.999999    0.999998    0.000000
 500    1.000000    0.999999    0.999998    0.000000
Warning: Desired error not necessarily achieved due to precision loss.
         Current function value: 0.000000
         Iterations: 12
         Function evaluations: 502
         Gradient evaluations: 98

However, no free launch, here I used function evaluation times instead of algorithmic iteration times as a counter. Some algorithms may evaluate target function multiple times in a single iteration.

| improve this answer | |
8
0

Try using:

options={'disp': True} 

to force scipy.optimize.minimize to print intermediate results.

| improve this answer | |
  • 3
    The documentation suggests that this is the correct answer, but in practice this does not work for me. – bremen_matt Jan 9 '18 at 13:40
  • 10
    The manual says this should be the answer, but as of scipy 1.10 this only outputs information at the end of the minimization -- no the progress of the algorithm or intermediate values. – Juanjo May 31 '18 at 14:09
  • @Juanjo I get your point and you are right it is not printing the progress of the minimization. – muammar Jul 3 '18 at 20:33
  • 1
    did anyone figure out how to get a verbose output? I am also not getting anything after setting disp: True in scipy.optimize.brute- just the end of the minimization as @Juanjo – tsando Oct 26 '18 at 14:45
  • 1
    This only works at convergence. It is not for printing the intermediate results. – user3015729 Jan 4 '19 at 16:10
3
0

Which minimization function are you using exactly?

Most of the functions have progress report built, including multiple levels of reports showing exactly the data you want, by using the disp flag (for example see scipy.optimize.fmin_l_bfgs_b).

| improve this answer | |
1
0

Many of the optimizers in scipy indeed lack verbose output (the 'trust-constr' method of scipy.optimize.minimize being an exception). I faced a similar issue and solved it by creating a wrapper around the objective function and using the callback function. No additional function evaluations are performed here, so this should be an efficient solution.

import numpy as np

class Simulator:
def __init__(self, function):
    self.f = function # actual objective function
    self.num_calls = 0 # how many times f has been called
    self.callback_count = 0 # number of times callback has been called, also measures iteration count
    self.list_calls_inp = [] # input of all calls
    self.list_calls_res = [] # result of all calls
    self.decreasing_list_calls_inp = [] # input of calls that resulted in decrease
    self.decreasing_list_calls_res = [] # result of calls that resulted in decrease
    self.list_callback_inp = [] # only appends inputs on callback, as such they correspond to the iterations
    self.list_callback_res = [] # only appends results on callback, as such they correspond to the iterations

def simulate(self, x):
    """Executes the actual simulation and returns the result, while
    updating the lists too. Pass to optimizer without arguments or
    parentheses."""
    result = self.f(x) # the actual evaluation of the function
    if not self.num_calls: # first call is stored in all lists
        self.decreasing_list_calls_inp.append(x)
        self.decreasing_list_calls_res.append(result)
        self.list_callback_inp.append(x)
        self.list_callback_res.append(result)
    elif result < self.decreasing_list_calls_res[-1]:
        self.decreasing_list_calls_inp.append(x)
        self.decreasing_list_calls_res.append(result)
    self.list_calls_inp.append(x)
    self.list_calls_res.append(result)
    self.num_calls += 1
    return result

def callback(self, xk, *_):
    """Callback function that can be used by optimizers of scipy.optimize.
    The third argument "*_" makes sure that it still works when the
    optimizer calls the callback function with more than one argument. Pass
    to optimizer without arguments or parentheses."""
    s1 = ""
    xk = np.atleast_1d(xk)
    # search backwards in input list for input corresponding to xk
    for i, x in reversed(list(enumerate(self.list_calls_inp))):
        x = np.atleast_1d(x)
        if np.allclose(x, xk):
            break

    for comp in xk:
        s1 += f"{comp:10.5e}\t"
    s1 += f"{self.list_calls_res[i]:10.5e}"

    self.list_callback_inp.append(xk)
    self.list_callback_res.append(self.list_calls_res[i])

    if not self.callback_count:
        s0 = ""
        for j, _ in enumerate(xk):
            tmp = f"Comp-{j+1}"
            s0 += f"{tmp:10s}\t"
        s0 += "Objective"
        print(s0)
    print(s1)
    self.callback_count += 1

A simple test can be defined

from scipy.optimize import minimize, rosen
ros_sim = Simulator(rosen)
minimize(ros_sim.simulate, [0, 0], method='BFGS', callback=ros_sim.callback, options={"disp": True})

print(f"Number of calls to Simulator instance {ros_sim.num_calls}")

resulting in:

Comp-1          Comp-2          Objective
1.76348e-01     -1.31390e-07    7.75116e-01
2.85778e-01     4.49433e-02     6.44992e-01
3.14130e-01     9.14198e-02     4.75685e-01
4.26061e-01     1.66413e-01     3.52251e-01
5.47657e-01     2.69948e-01     2.94496e-01
5.59299e-01     3.00400e-01     2.09631e-01
6.49988e-01     4.12880e-01     1.31733e-01
7.29661e-01     5.21348e-01     8.53096e-02
7.97441e-01     6.39950e-01     4.26607e-02
8.43948e-01     7.08872e-01     2.54921e-02
8.73649e-01     7.56823e-01     2.01121e-02
9.05079e-01     8.12892e-01     1.29502e-02
9.38085e-01     8.78276e-01     4.13206e-03
9.73116e-01     9.44072e-01     1.55308e-03
9.86552e-01     9.73498e-01     1.85366e-04
9.99529e-01     9.98598e-01     2.14298e-05
9.99114e-01     9.98178e-01     1.04837e-06
9.99913e-01     9.99825e-01     7.61051e-09
9.99995e-01     9.99989e-01     2.83979e-11
Optimization terminated successfully.
         Current function value: 0.000000
         Iterations: 19
         Function evaluations: 96
         Gradient evaluations: 24
Number of calls to Simulator instance 96

Of course this is just a template, it can be adjusted to your needs. It does not provide all information about the status of the optimizer (like e.g. in the Optimization Toolbox of MATLAB), but at least you have some idea of the progress of the optimization.

A similar approach can be found here, without using the callback function. In my approach the callback function is used to print output exactly when the optimizer has finished an iteration, and not every single function call.

| improve this answer | |
0
0

Below is a solution that works for me :

def f_(x):   # The rosenbrock function
    return (1 - x[0])**2 + 100 * (x[1] - x[0]**2)**2

def conjugate_gradient(x0, f):
    all_x_i = [x0[0]]
    all_y_i = [x0[1]]
    all_f_i = [f(x0)]
    def store(X):
        x, y = X
        all_x_i.append(x)
        all_y_i.append(y)
        all_f_i.append(f(X))
    optimize.minimize(f, x0, method="CG", callback=store, options={"gtol": 1e-12})
    return all_x_i, all_y_i, all_f_i

and by example :

conjugate_gradient([2, -1], f_)

Source

| improve this answer | |
0
0

It is also possible to include a simple print() statement in the function to be minimized. If you import the function you can create a wapper.

import numpy as np
from scipy.optimize import minimize


def rosen(X): #Rosenbrock function
    print(X)
    return (1.0 - X[0])**2 + 100.0 * (X[1] - X[0]**2)**2 + \
           (1.0 - X[1])**2 + 100.0 * (X[2] - X[1]**2)**2

x0 = np.array([1.1, 1.1, 1.1], dtype=np.double)
minimize(rosen, 
         x0)
| improve this answer | |

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