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I have the following string:

"{f[{-1 + x, y}]; f[{1 + x, y}]; f[{x, 1 + y}]}"

And I want to convert it to expression(s). Directly apply ToExpression only gives the last, i.e., {f[{x, 1 + y}]}. How to get the whole list?

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2 Answers 2

up vote 7 down vote accepted

You can check the documentation of ToExpression to find its 3rd argument, and use

ToExpression["{f[{-1 + x, y}]; f[{1 + x, y}]; f[{x, 1 + y}]}", InputForm, Hold]

to prevent evaluation.

Several functions that either convert expressions or extract parts (Extract, Level, etc.) have an option to wrap the extracted part in an arbitrary function. A common use is to wrap them in Hold, preventing evaluation.


EDIT: Note that your expression is not a list. It's a CompoundExpression. You might be looking for

ToExpression["{f[{-1 + x, y}]; f[{1 + x, y}]; f[{x, 1 + y}]}", InputForm, Hold] /. CompoundExpression -> List // ReleaseHold

Can you explain what you are trying to achieve and where you got the string from?

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After I do that, I got Hold in front of the expressions. How to get rid of the Hold after this? Use Apply? –  user1096734 Dec 31 '11 at 18:27
3  
Use ReleaseHold to remove Hold when you want the expression to evaluate. Or, use HoldForm instead of Hold - this works like Hold but doesn't display. –  Chris Degnen Dec 31 '11 at 20:36
2  
@littleEinstein If you get rid of Hold, the expression will evaluate and you'll end up with {f[{x, 1 + y}]} again. I think you might have a misunderstanding about what ; is. Please tell us what you are trying to achieve. –  Szabolcs Jan 1 '12 at 9:52
1  
@littleEinstein If you generate code, it's probably better to use held expression (Hold) than strings. –  Szabolcs Jan 1 '12 at 17:50
1  
Can also be done in one fell swoop with ToHeldExpression –  Chris Degnen Jan 4 '12 at 14:32

Actually ToExpression is converting the whole string to an expression as you would expect. In the following example

In[1]:= ToExpression["a=1;b=2"]
Out[1]= 2

In[2]:= a
Out[2]= 1

you can see that the first part a=1 was evaluated correctly as part of the CompoundExpression.

What you probably want is to convert your expressions separated by semicolons to a list of expressions. You can use StringSplit for that:

In[3]:= ToExpressionList[s_String] := ToExpression /@ StringSplit[s, ";"]

In[4]:= ToExpressionList["x;y"]
Out[4]= {x,y}

Edit : It looks like you' re trying to use the semicolon as a list separator.In Mathematica you would have to use , for this.So you could also achieve what you want by substituting , for ; in your string and then applying ToExpression afterwards:

In[20] := ToExpression @
            StringReplace[
              "{f[{-1 + x, y}]; f[{1 + x, y}]; f[{x, 1 + y}]}",
              ";" -> ","
            ]


Out[20] = {f({x-1,y}),f({x+1,y}),f({x,y+1})}
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However, I do want to keep the ; after ToExpression –  user1096734 Dec 31 '11 at 18:26
    
ok, now i see! Then i misinterpreted your question. Szabolcs gave the right answer then. –  Thies Heidecke Dec 31 '11 at 18:33
2  
I must mention that using strings in this context is fragile in general, and also in this case in particular. Semicolon is also a part of /; (Condition) operator, with obvious consequences. –  Leonid Shifrin Jan 1 '12 at 19:34

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