Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

When using the tf function in matlab, I'm not getting exactly the output I need.

For example:

tf( 1 , [1 1 1])

Produces:

ans =

       1
 -----------
  s^2 + s + 1

Continuous-time transfer function.

What I desire is this:

 ans = 
    1/(s^2 + s + 1).

I do not want the pretty format. I want to access the transfer function directly.

share|improve this question

3 Answers 3

f = tf( 1 , [1 1 1])

will return a TF object in f.

share|improve this answer
    
No, you dont understand. Doing what you said does me no good. Even with f = tf(1 , [1 1 1]), all I get is f = 1 ----------- s^2 + s + 1 I need f = 1/(s^2 + s + 1) –  Luter Ferraz Feb 1 '13 at 20:44
    
@user2033840 do you want access to the actual transfer function or do you want it just displayed as 1/(s^2+s+1) ? –  Bitwise Feb 1 '13 at 21:00
    
Just displayed as. I want a function or script that, when applied to said variable f = tf(1 , [1 1 1]), gives me the output 1/(s^2 + s + 1). Is there such a thing? Or anything similar? –  Luter Ferraz Feb 1 '13 at 21:11

Modify printsys.m file in control toolbox. Remove disp([' ','-'*ones(1,len)]) line to remove the line and print nominator and dominator using single disp command.

share|improve this answer

I ran into the same problem and could not find a satisfactory solution, so I wrote my own.

It's very simple feel free to use it anyway you wish.

The following function should be placed in tf2string.m

% name: tf2string.m
% author: vittorio alfieri

% example:
% W1_out=tf2string(W1)
% 
% W1_out =
% (s + 37.0)/(1.646*s)

function output_string = tf2string(input_tf)

syms s

sym_num=poly2sym(input_tf.num{:},s);
sym_num=vpa(sym_num, 4);
char_num=char(sym_num);

sym_den=poly2sym(input_tf.den{:},s);
sym_den=vpa(sym_den, 4);
char_den=char(sym_den);

output_string = ['(', char_num, ')/(', char_den, ')'];
s=tf('s');

-Vittorio

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.