Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

After playing with Mathematica's symbolic and numerical capabilities, I find it to be a decent programming language, too. However, something making it less appealing as a general-purpose language is the lack of C-like struct data type (or the record type as known in Pascal). How can I get around this problem?

share|improve this question

3 Answers 3

You can use a Mathematica rule lists to mimic a C-like struct data type. E.g.,:

person = {firstName -> "John", lastName -> "Doe"}

You can then access the record's fields by using the /. operator:

firstName /. person

yields John.

lastName /. person

yields Doe.

To update a field of a record, prepend the updated field to the list:

PrependTo[person , firstName -> "Jane"]

firstName /. person then yields Jane.

Also see the Mathematica documentation on transformation rules.

share|improve this answer
2  
Making a few changes using prepending means that a number of unused rules will appear in the person list. Not very efficient. –  Sjoerd C. de Vries Nov 19 '11 at 16:00

If I understand your question correctly, you can simply write things like this:

x[foo] = bar
x[bar] = baz
x[1] = 7
x[7] = 1
?x

Then to access the data for any specific index just type the same (e.g., x[1] will return 7, x[foo] will return bar).

share|improve this answer
    
This way of doing things has one real advantage over the rule approach suggested by sakra: it allows you to mutate the "fields" of the "struct" in a straightforward way. –  Pillsy Sep 22 '09 at 13:20
1  
There's a problem with your answer: if a "field" is a list, its elements can't be changed individually. For example, x[foo]={1,2}; x[foo] [[1]] =3 (* attempting to change list element *) will result in an error, because x[foo] is not an Lvalue. So it still doesn't fully replace C struct functionality. –  felix Sep 23 '09 at 1:43
1  
You need to replace the old value completely, not just change a single value of the list: f["foo"] = {1, 2}; f["foo"] = (ReplacePart[f["foo"], 1 -> 3]) Also, I'd use strings or integers for keys, not symbols. There's also some tricky business you can do by setting UpValues for Set. –  Joshua Martell Nov 25 '10 at 16:08

This way can work:

x[foo] = bar

x[bar] = baz

x[1] = 7

x[7] = 1

x[c] = {{1,2,3},{4,5,6}}

and also for changing the elements of a list field you can so the following:

x[c] = ReplacePart[x[c], {1, 1} -> 8]

which returns:

x[c] = {{8,2,3},{4,5,6}}
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.