سؤال
Suppose I have an expression like (actually mine is much more complex, thousands of characters)
https://stackoverflow.com/questions/22685853
italiano
english
français
española
中国
日本の
العربية
Deutsch
한국어
Português
Russianexpr:a+b*c+b*c*d;
and I want to replace an internal sub-expression with a symbol (useful to avoid recomputation of common subexpressions), say k in place of b*c:
subst(b*c=k,expr);
returns
k+b*c*d+a
How I can make Maxima calculate the "right" substitution so to return (apart from obviuos simplification, here)
k+k*d+a
?
المحلول
Take a look at let and letsimp. E.g.:
(%i2) expr : a + b*c + b*c*d;
(%o2) b*c*d+b*c+a
(%i3) let (b*c, k);
(%o3) b*c --> k
(%i4) letsimp (expr);
(%o4) d*k+k+a
letsimp differs from subst and tellsimp or defrule in that those other functions make only formal substitutions, i.e., replacing subexpressions which are exactly the same as some pattern.
نصائح أخرى
You can try optimize
http://maxima.sourceforge.net/docs/manual/en/maxima_6.html#IDX219
(%i14) example(optimize);
(%i15) diff(exp(y+x^2)/(y+x),x,2)
2 2 2 2
2 y + x y + x y + x y + x
4 x %e 2 %e 4 x %e 2 %e
(%o15) ------------- + ---------- - ------------ + ----------
y + x y + x 2 3
(y + x) (y + x)
(%i16) optimize(%)
2 y + %2 1
(%o16) block([%1, %2, %3, %4], %1 : y + x, %2 : x , %3 : %e , %4 : --,
%1
4 x %3 2 %3
4 %2 %4 %3 + 2 %4 %3 - ------ + ----)
2 3
%1 %1
