Use eval function with strings containing if clauses and for loops

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Enrico
Enrico am 3 Okt. 2013
Kommentiert: Steven Lord am 10 Mär. 2022
Hi,
this is what I'm trying to do:
  1. Build a string containing code (including a for loop and an if clause)
  2. Execute the string as if it were actual code using the eval() function
Example:
a=5;
eval('if a>4 b=1 else b=0 end')
The error displayed is:
Error: Illegal use of reserved keyword "else".
If I remove the else and execute the lines:
a=5;
eval('if a>4 b=1 end')
I get:
Error: Illegal use of reserved keyword "end".
The same error appears if the string contains a for loop.
Is there a way to bypass the problem? Maybe another function I am not aware of?
Thank you!

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Antworten (2)

Mina Mohaghegh
Mina Mohaghegh am 9 Dez. 2017
this example works, I believe you can figure out the rest:
eval(char(sprintf('for i=1:2 i \n end ')))
Michael Doroginizky
Michael Doroginizky am 10 Mär. 2022
>> eval('S=0')
S =
0
>> eval('S=0; for i = 1 : 10 S=S+1; end')
>> S
S =
10
>> eval('S=0; if S > 0 S=5; elseif S < -1 S=7; else S=10; end')
>> S
S =
10
  2 Kommentare
Rik
Rik am 10 Mär. 2022
Why would you encourage the use of eval by reviving such an old thread?
Steven Lord
Steven Lord am 10 Mär. 2022
Ran in:
If you're using eval so you can execute this code inside an anonymous function, for example, you don't need to. Taking a look at the most complicated of the three:
eval('S=0; if S > 0 S=5; elseif S < -1 S=7; else S=10; end')
That could be replaced with a call to discretize (which would have the added benefit of being able to handle a non-scalar S array.)
S = -5:5;
x = discretize(S, [-Inf -1 0 Inf], [7, 10, 5]);
[S; x]
ans = 2×11
-5 -4 -3 -2 -1 0 1 2 3 4 5 7 7 7 7 10 5 5 5 5 5 5
For values of S less than 1 (and greater than or equal to -Inf), the corresponding elements of x are 7. For values greater than or equal to 0 (and less than or equal to Inf) the corresponding elements of x are 5. Otherwise (in this case S = -1) the corresponding elements of x are 10.
If you really need that clause to be strictly greater than, change the 0 in the discretize call to something small but nonzero like eps or eps(0).
x2 = discretize(S, [-Inf -1 eps Inf], [7, 10, 5]);
x3 = discretize(S, [-Inf -1 eps(0) Inf], [7, 10, 5]);
[S; x2; x3]
ans = 3×11
-5 -4 -3 -2 -1 0 1 2 3 4 5 7 7 7 7 10 10 5 5 5 5 5 7 7 7 7 10 10 5 5 5 5 5

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