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tan

kotlin-stdlib/kotlin.math/tan

Требования к платформе и версии: Common (1.2), Wasm-JS (1.8), Wasm-WASI (1.8)

expect fun tan(x: Double): Double

Вычисляет тангенс угла x, заданного в радианах.

Особые случаи:

  • tan(NaN|+Inf|-Inf) — это NaN

Примеры

import kotlin.math.*
import kotlin.test.*

fun main() { 
   //sampleStart 
   val epsilon = 1e-10

println(tan(0.0)) // 0.0
// Results may not be exact, so we're only checking that they are within epsilon from the expected value
// tan(π/4) = 1.0
println("(tan(PI / 4) - 1.0).absoluteValue < epsilon is ${(tan(PI / 4) - 1.0).absoluteValue < epsilon}") // true
// tan(-π/4) = -1.0
println("(tan(-PI / 4) - -1.0).absoluteValue < epsilon is ${(tan(-PI / 4) - -1.0).absoluteValue < epsilon}") // true

// special cases
println(tan(Double.NaN)) // NaN
println(tan(Double.POSITIVE_INFINITY)) // NaN
println(tan(Double.NEGATIVE_INFINITY)) // NaN 
   //sampleEnd
}

expect fun tan(x: Float): Float

Вычисляет тангенс угла x, заданного в радианах.

Особые случаи:

  • tan(NaN|+Inf|-Inf) — это NaN

Примеры

import kotlin.math.*
import kotlin.test.*

fun main() { 
   //sampleStart 
   val epsilon = 1e-6f

println(tan(0.0f)) // 0.0
// Results may not be exact, so we're only checking that they are within epsilon from the expected value
// tan(π/4) = 1.0
println("(tan(PI.toFloat() / 4) - 1.0f).absoluteValue < epsilon is ${(tan(PI.toFloat() / 4) - 1.0f).absoluteValue < epsilon}") // true
// tan(-π/4) = -1.0
println("(tan(-PI.toFloat() / 4) - -1.0f).absoluteValue < epsilon is ${(tan(-PI.toFloat() / 4) - -1.0f).absoluteValue < epsilon}") // true

// special cases
println(tan(Float.NaN)) // NaN
println(tan(Float.POSITIVE_INFINITY)) // NaN
println(tan(Float.NEGATIVE_INFINITY)) // NaN 
   //sampleEnd
}

Требования к платформе и версии: JS (1.2), JVM (1.2)

actual inline fun tan(x: Double): Double

Вычисляет тангенс угла x, заданного в радианах.

Особые случаи:

  • tan(NaN|+Inf|-Inf) — это NaN

Примеры

import kotlin.math.*
import kotlin.test.*

fun main() { 
   //sampleStart 
   val epsilon = 1e-10

println(tan(0.0)) // 0.0
// Results may not be exact, so we're only checking that they are within epsilon from the expected value
// tan(π/4) = 1.0
println("(tan(PI / 4) - 1.0).absoluteValue < epsilon is ${(tan(PI / 4) - 1.0).absoluteValue < epsilon}") // true
// tan(-π/4) = -1.0
println("(tan(-PI / 4) - -1.0).absoluteValue < epsilon is ${(tan(-PI / 4) - -1.0).absoluteValue < epsilon}") // true

// special cases
println(tan(Double.NaN)) // NaN
println(tan(Double.POSITIVE_INFINITY)) // NaN
println(tan(Double.NEGATIVE_INFINITY)) // NaN 
   //sampleEnd
}

actual inline fun tan(x: Float): Float

Вычисляет тангенс угла x, заданного в радианах.

Особые случаи:

  • tan(NaN|+Inf|-Inf) — это NaN

Примеры

import kotlin.math.*
import kotlin.test.*

fun main() { 
   //sampleStart 
   val epsilon = 1e-6f

println(tan(0.0f)) // 0.0
// Results may not be exact, so we're only checking that they are within epsilon from the expected value
// tan(π/4) = 1.0
println("(tan(PI.toFloat() / 4) - 1.0f).absoluteValue < epsilon is ${(tan(PI.toFloat() / 4) - 1.0f).absoluteValue < epsilon}") // true
// tan(-π/4) = -1.0
println("(tan(-PI.toFloat() / 4) - -1.0f).absoluteValue < epsilon is ${(tan(-PI.toFloat() / 4) - -1.0f).absoluteValue < epsilon}") // true

// special cases
println(tan(Float.NaN)) // NaN
println(tan(Float.POSITIVE_INFINITY)) // NaN
println(tan(Float.NEGATIVE_INFINITY)) // NaN 
   //sampleEnd
}

Требования к платформе и версии: Native (1.3)

actual external fun tan(x: Double): Double

Вычисляет тангенс угла x, заданного в радианах.

Особые случаи:

  • tan(NaN|+Inf|-Inf) — это NaN

Примеры

import kotlin.math.*
import kotlin.test.*

fun main() { 
   //sampleStart 
   val epsilon = 1e-10

println(tan(0.0)) // 0.0
// Results may not be exact, so we're only checking that they are within epsilon from the expected value
// tan(π/4) = 1.0
println("(tan(PI / 4) - 1.0).absoluteValue < epsilon is ${(tan(PI / 4) - 1.0).absoluteValue < epsilon}") // true
// tan(-π/4) = -1.0
println("(tan(-PI / 4) - -1.0).absoluteValue < epsilon is ${(tan(-PI / 4) - -1.0).absoluteValue < epsilon}") // true

// special cases
println(tan(Double.NaN)) // NaN
println(tan(Double.POSITIVE_INFINITY)) // NaN
println(tan(Double.NEGATIVE_INFINITY)) // NaN 
   //sampleEnd
}

actual external fun tan(x: Float): Float

Вычисляет тангенс угла x, заданного в радианах.

Особые случаи:

  • tan(NaN|+Inf|-Inf) — это NaN

Примеры

import kotlin.math.*
import kotlin.test.*

fun main() { 
   //sampleStart 
   val epsilon = 1e-6f

println(tan(0.0f)) // 0.0
// Results may not be exact, so we're only checking that they are within epsilon from the expected value
// tan(π/4) = 1.0
println("(tan(PI.toFloat() / 4) - 1.0f).absoluteValue < epsilon is ${(tan(PI.toFloat() / 4) - 1.0f).absoluteValue < epsilon}") // true
// tan(-π/4) = -1.0
println("(tan(-PI.toFloat() / 4) - -1.0f).absoluteValue < epsilon is ${(tan(-PI.toFloat() / 4) - -1.0f).absoluteValue < epsilon}") // true

// special cases
println(tan(Float.NaN)) // NaN
println(tan(Float.POSITIVE_INFINITY)) // NaN
println(tan(Float.NEGATIVE_INFINITY)) // NaN 
   //sampleEnd
}

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Licensed under the Apache License, Version 2.0.
https://kotlinlang.org/api/core/kotlin-stdlib/kotlin.math/tan.html

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