如何用第二个序列的元素填充第一个序列
How to fill first sequence with elements of second sequence
我有两个序列,第一个序列较大或与第二个序列大小相同。
例如 val first = 1 to 7 和 val second = Seq(3, 5)。我想生成一个如下所示的序列:
first |second| result
1 | | 3
2 | | 3
3 | 3 | 3
4 | | 3
5 | 5 | 5
6 | | 5
7 | | 5
第二个例子:
val first = 1 to 7
val second = Seq(3, 5, 6)
result will be Seq(3, 3, 3, 3, 5, 6, 6)
我正在寻找一个通用的解决方案。
简单的方法:
scala> val first = 1 to 7 toList
first: List[Int] = List(1, 2, 3, 4, 5, 6, 7)
scala> val second = List(3,5)
second: List[Int] = List(3, 5)
scala> val result = first.map(x => if(x < second.tail.head) second.head else second.tail.head)
result: List[Int] = List(3, 3, 3, 3, 5, 5, 5)
不过,这不是很灵活,但它满足了你的问题。
我自己找到了解决方案。问题中的给定序列
first.foldLeft((second, Seq.empty[Int])) { case ((sec, acc), f) =>
if (sec.tail.isEmpty) (sec, sec.head +: acc)
else if (f >= sec.tail.head) (sec.tail, sec.tail.head +: acc)
else (sec, sec.head +: acc)
}._2.reverse
提供正确的结果
使用span
的递归解决方案
@annotation.tailrec
def recurse(first: Seq[Int], second: Seq[Int], acc: Seq[Int] = List.empty): Seq[Int] = {
second match {
case a :: b :: tail =>
val (f1, f2) = first.span(_ != b)
recurse(f2, b :: tail, List.fill(f1.length)(a) ++ acc)
case a :: Nil =>
(List.fill(first.length)(a) ++ acc).reverse
}
}
val first = 1 to 7
println(recurse(first, Seq(3, 5)))
// List(3, 3, 3, 3, 5, 5, 5)
println(recurse(first, Seq(3, 5, 6)))
// List(3, 3, 3, 3, 5, 6, 6)
非常简单的单行解决方案。创建第二个列表的第一个元素和第二个列表的所有元素小于第一个列表的当前映射元素的序列,并取该序列的最大元素。
val first = 1 to 7
val second = List(3, 5, 6)
val result = (first.map(x => (second.head +: second.filter(_ <= x)).last))
我有两个序列,第一个序列较大或与第二个序列大小相同。
例如 val first = 1 to 7 和 val second = Seq(3, 5)。我想生成一个如下所示的序列:
first |second| result
1 | | 3
2 | | 3
3 | 3 | 3
4 | | 3
5 | 5 | 5
6 | | 5
7 | | 5
第二个例子:
val first = 1 to 7
val second = Seq(3, 5, 6)
result will be Seq(3, 3, 3, 3, 5, 6, 6)
我正在寻找一个通用的解决方案。
简单的方法:
scala> val first = 1 to 7 toList
first: List[Int] = List(1, 2, 3, 4, 5, 6, 7)
scala> val second = List(3,5)
second: List[Int] = List(3, 5)
scala> val result = first.map(x => if(x < second.tail.head) second.head else second.tail.head)
result: List[Int] = List(3, 3, 3, 3, 5, 5, 5)
不过,这不是很灵活,但它满足了你的问题。
我自己找到了解决方案。问题中的给定序列
first.foldLeft((second, Seq.empty[Int])) { case ((sec, acc), f) =>
if (sec.tail.isEmpty) (sec, sec.head +: acc)
else if (f >= sec.tail.head) (sec.tail, sec.tail.head +: acc)
else (sec, sec.head +: acc)
}._2.reverse
提供正确的结果
使用span
@annotation.tailrec
def recurse(first: Seq[Int], second: Seq[Int], acc: Seq[Int] = List.empty): Seq[Int] = {
second match {
case a :: b :: tail =>
val (f1, f2) = first.span(_ != b)
recurse(f2, b :: tail, List.fill(f1.length)(a) ++ acc)
case a :: Nil =>
(List.fill(first.length)(a) ++ acc).reverse
}
}
val first = 1 to 7
println(recurse(first, Seq(3, 5)))
// List(3, 3, 3, 3, 5, 5, 5)
println(recurse(first, Seq(3, 5, 6)))
// List(3, 3, 3, 3, 5, 6, 6)
非常简单的单行解决方案。创建第二个列表的第一个元素和第二个列表的所有元素小于第一个列表的当前映射元素的序列,并取该序列的最大元素。
val first = 1 to 7
val second = List(3, 5, 6)
val result = (first.map(x => (second.head +: second.filter(_ <= x)).last))