Clojure [已解决][求助] Scheme 中匿名函数如何接受任意个参数

Alexander · March 12, 2014 · Last by funfriend replied at March 12, 2014 · 7877 hits

使用 define 时可以这样定义

(define (func . args) args)

如何在匿名函数中定义

; Error `(lambda ( . args) args)`

update: 方法见 #1 楼

(lambda args args)

Unknow user #1 March 12, 2014

((lambda args args) 1 2 3)

1 likes

You need to Sign in before reply, if you don't have an account, please Sign up first.