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Consider this example:

expr = a (1 + b + c d + Sqrt[-2 d e + fg + h^2] + a j );

Now I'd like to insert a complex I before the term in the square root and retain the rest of the expression. I know that expr has only one Sqrt term in it. So I tried the following:

ToBoxes@# /. SqrtBox@x_ :> RowBox[{I, " ", SqrtBox@x}] &[
  expr] // ToExpression
Out[1] = $Failed

Q1: Why does it fail?

The workaround was to use a different variable and then replace it with I as so:

(ToBoxes@# /. SqrtBox@x_ :> RowBox[{k, " ", SqrtBox@x}] &[expr] // 
   ToExpression) /. k -> I 

enter image description here

Q2: Why does this work?

Q3: Are there alternate/better ways to do this?

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3 Answers 3

up vote 4 down vote accepted

The parts of a box expression that aren't structural need to be strings. So you want

In[1]:= expr = a (1 + b + c d + Sqrt[-2 d e + fg + h^2] + a j );

In[2]:= ToBoxes@# /. SqrtBox@x_ :> RowBox[{"I", " ", SqrtBox@x}]&[expr]//ToExpression
Out[2]= a (1 + b + c d + I Sqrt[-2 d e + fg + h^2] + a j)
share|improve this answer
    
Thanks, that explains it partially. Why does it work then in the second case, i.e. k (not a string) instead of I? –  r.m. May 31 '11 at 6:35
1  
@yoda: I think it's because I (not the string) gets interpreted as Complex[0,1]... Only atomic-type (not exactly those that are AtomQ) objects can be put in there without being a string or in a RowBox etc... –  Simon May 31 '11 at 6:42
    
Aaah, yes. Of course! Thanks, never thought of that. –  r.m. May 31 '11 at 6:44

Errr

expr /. Sqrt[x_] -> I Sqrt[x]

?

Edit

If you want to consider the 1/Sqrt[x] case try:

expr/.Sqrt[x_]->I Sqrt[x]/.Power[x__,Rational[-1,2]]-> 1/( I Sqrt[x])
share|improve this answer
    
Yes, I was using that earlier, but I learnt from this question that it fails in certain cases. For example, your method fails for expr=1/Sqrt[a+b]. I admit, my example did not specify this corner case, but I was more keen on understanding why it fails with I and not with other symbols. –  r.m. May 31 '11 at 5:27
2  
+1 If the context is such that you know ahead of time that you are going to be manipulating the expression, you can wrap it in Hold and then use the straight-forward transformation: expr = Hold[...]; expr /. x_Sqrt :> I x // ReleaseHold. –  WReach May 31 '11 at 14:17
    
Thanks for your answer, I have accepted Simon's because my primary confusion was why I fails and k worked, and his answer clarified that. –  r.m. May 31 '11 at 15:10

Simon is correct that you need the quote marks. Also, your replacement can be simplified:

ToBoxes@expr /. x_SqrtBox :> RowBox@{"I", x} // ToExpression
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