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======================= Original Post ======================

In lambda calculus, we define the boolean operators as below: $ AND \to \lambda{}pq.pq\boldsymbol{F} \to \lambda{}p.\lambda{}q.pq(\lambda{}x.\lambda{}y.y) $ $ OR \to \lambda{}p.\lambda{}q.pTq \to \lambda{}p.\lambda{}q.p(\lambda{}x.\lambda{}y.x)q $ $ NOT \to \lambda{}p.pFT \to \lambda{}p.p(\lambda{}x.\lambda{}y.y)(\lambda{}x.\lambda{}y.x) $

How can I show that "$AND\ (AND\ b\ c)\ d$ " and "$AND\ b\ (AND\ c\ d)$ " have the same $\beta\eta$ normal form? I can only get: $ AND\ (AND\ b\ c)\ d \to (bcF)dF$ $ AND\ b\ (AND\ c\ d) \to b(cdF)F$ Any hints are appreciated. Actually, there are another two pairs of such terms: $ NOT\ (NOT\ b)\ and\ b$ $ AND\ (NOT\ b)\ (NOT\ c)\ and\ NOT\ (AND\ b\ c)$ The question is from exercise.10-13 of Reynolds' book "Theories of Programming Languages".

======================== Answer =========================

Thanks to Anton and Henning. The following definitions work out as expected: $ AND \to \lambda{}pqxy.p(qxy)y $ $ OR \to \lambda{}pqxy.px(qxy) $ $ NOT \to \lambda{}pxy.pyx $ For $NOT\ (NOT\ b)$ and $b$: $ (\lambda{}pxy.pyx)((\lambda{}pxy.pyx)b) \to \lambda{}xy.((\lambda{}pxy.pyx)b)yx \to \lambda{}xy.(\lambda{}xy.byx)yx \to \lambda{}xy.(\lambda{}u.buy)x \to \lambda{}xy.bxy \to_\eta \lambda{}x.bx \to_\eta b $

But why the original definitions doesn't reduce to the same $\beta\eta$ normal form still needs to be tackled.

2 Answers 2

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I think you need some additional assumptions on what $b$, $c$ and $d$ can be. If they are arbitrary lambda terms, then your sought conclusion does not hold.

For example, let $b=\lambda pqrsx.x$. Then $(bcF)dF \mathrel{\to^*_\beta} \lambda x.x$ but $b(cdF)F \mathrel{\rightarrow^*_\beta} \lambda rsx.x$ and these two results are manifestly not $\beta\eta$-equivalent.

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Two closed lambda expressions can be automatically checked for $\beta\eta$-convertibility when some normalizing strategy against $\beta\eta$-reduction have led to one and the same normal form for both of the given terms. Their normal forms then have to be literally equal or up to $\alpha$-conversion.

However, the same does not hold true for terms having free variables. For instance, such valid lambda expressions as $x$ and $y$ cannot be said to be equal in general case. But this is not the only show-stopper.

The other one is that even for arbitrary closed terms $M$ and $N$, $\text{AND}\; M\; N \neq \text{AND}\; N\; M.$

When both $M$ and $N$ are boolean or can be reduced to boolean normal form, then $\text{AND}$ can be indeed considered as some kind of a commutative operation. The requirement for both $M$ and $N$ to have a normal form is crucial. Otherwise, for $M \equiv F$ and $N \equiv \Omega$, $\text{AND}\; M\; N \rightarrow F$ while $\text{AND}\; N\; M$ does not have a normal form.

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    $ \lambda{}xy.(\lambda{}st.b\ t\ s)\ y\ x \to_* \lambda{}xy.b\ y\ x \to_\eta \lambda{}y.by \to_\eta b $2011-10-08