三角函數精確值:修订间差异
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Xiao niu er(留言 | 贡献) 小 →三角函数精确值: 修正笔误 |
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{{三角学}} |
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{{intromissing|time=2010-09-23T02:58:38+00:00}} |
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'''三角函數精確值'''是利用[[三角恆等式|三角函數的公式]]將特定的[[三角函數]]值加以化簡,並以數學[[方根|根式]]或[[分數]]表示。 |
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{{unreferenced|time=2010-09-23T02:58:38+00:00}} |
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'''三角函數精確值'''是利用[[三角恆等式|三角函數的公式]]將特定的[[三角函數]]值加以化簡,並以數學[[方根|根式]]或[[分數]]表示 |
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用[[方根|根式]]或[[分數]]表達的精確三角函數有時很有用,主要用於簡化的解決某些[[方程式]]能進一步化簡。 |
用[[方根|根式]]或[[分數]]表達的精確[[三角函數]]有時很有用,主要用於簡化的解決某些[[方程式]]能進一步化簡。 |
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根据[[尼云定理]],有理数度数的角的正弦值,其中的有理数仅有0,<math>\pm\frac{1}{2}</math>,±1。 |
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請注意,1 ° =π/180弧度。 |
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{|class = "wikitable" width=45% style="text-align: center; vertical-align: middle" |
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|+ 相同角度的轉換表 |
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! 角度單位 !! colspan=8 | 值 |
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|- |
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! [[轉 (角)|轉]] |
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| <math>0</math> |
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| <math>\frac{1}{12}</math> |
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| <math>\frac{1}{8}</math> |
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| <math>\frac{1}{6}</math> |
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| <math>\frac{1}{4}</math> |
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| <math>\frac{1}{2}</math> |
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| <math>\frac{3}{4}</math> |
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| <math>1</math> |
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|- |
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! [[角度]] |
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| <math>0^{\circ}</math> |
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| <math>30^{\circ}</math> |
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| <math>45^{\circ}</math> |
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| <math>60^{\circ}</math> |
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| <math>90^{\circ}</math> |
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| <math>180^{\circ}</math> |
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| <math>270^{\circ}</math> |
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| <math>360^{\circ}</math> |
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|- |
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! [[弧度]] |
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| <math>0</math> |
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| <math>\frac{\pi}{6}</math> |
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| <math>\frac{\pi}{4}</math> |
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| <math>\frac{\pi}{3}</math> |
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| <math>\frac{\pi}{2}</math> |
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| <math>\pi</math> |
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| <math>\frac{3\pi}{2}</math> |
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| <math>2\pi</math> |
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|- |
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! [[梯度 (角)|梯度]] |
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| <math>0^g</math> |
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| <math>33\frac{1}{3}^g</math> |
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| <math>50^g</math> |
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| <math>66\frac{2}{3}^g</math> |
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| <math>100^g</math> |
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| <math>200^g</math> |
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| <math>300^g</math> |
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| <math>400^g</math> |
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|} |
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==計算方式== |
==計算方式== |
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===基於常識=== |
===基於常識=== |
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例如:0°、30°、45° |
例如:0°、30°、45° |
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[[File:Unit_circle_angles.svg|center]] |
[[File:Unit_circle_angles.svg|center|500px|單位圓]] |
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===經由半角公式的計算=== |
===經由半角公式的計算=== |
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{{see also2|[[三角恒等式#雙倍角、三倍角和半角公式|半角公式]]}} |
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例如:15°、22.5° |
例如:15°、22.5° |
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:<math>\sin\left(\frac{x}{2}\right) = \pm\, \sqrt{\tfrac{1}{2}(1 - \cos x)}</math> |
:<math>\sin\left(\frac{x}{2}\right) = \pm\, \sqrt{\tfrac{1}{2}(1 - \cos x)}</math> |
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:<math>\cos\left(\frac{x}{2}\right) = \pm\, \sqrt{\tfrac{1}{2}(1 + \cos x)}</math> |
:<math>\cos\left(\frac{x}{2}\right) = \pm\, \sqrt{\tfrac{1}{2}(1 + \cos x)}</math> |
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===利用三倍角公式求<math>\frac{1}{3}\,</math>角=== |
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===利用三倍角公式求<math>\frac13\,</math>角=== |
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例如:10°、20°、7°......等,非三的倍數的角的精確值。 |
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{{see also2|[[三角恒等式#雙倍角、三倍角和半角公式|三倍角公式]]}} |
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例如:10°、20°、7°......等等,非三的倍數的角的精確值。 |
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*<math>\sin 3\theta = 3 \sin \theta- 4 \sin^3\theta \,</math> |
*<math>\sin 3\theta = 3 \sin \theta- 4 \sin^3\theta \,</math> |
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例如:<math>\sin\frac{\pi}{9}=\sin 20^\circ=\sqrt[3]{-\frac{\sqrt{3}}{16}+\sqrt{-\frac{1}{256}}}+\sqrt[3]{-\frac{\sqrt{3}}{16}-\sqrt{-\frac{1}{256}}}</math> |
例如:<math>\sin\frac{\pi}{9}=\sin 20^\circ=\sqrt[3]{-\frac{\sqrt{3}}{16}+\sqrt{-\frac{1}{256}}}+\sqrt[3]{-\frac{\sqrt{3}}{16}-\sqrt{-\frac{1}{256}}}</math> |
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同樣地,若角度代未知數,則會得到[[三分之一角公式]]。 |
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===經由合角公式的計算=== |
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===经由欧拉公式的计算=== |
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{{see|歐拉公式}} |
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*<math>\cos\frac{\theta}{n} = \Re\left(\sqrt[n]{\cos\theta+i\sin\theta}\right) = \frac{1}{2}\left(\sqrt[n]{\cos\theta+i\sin\theta}+\sqrt[n]{\cos\theta-i\sin\theta}\right)</math> |
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*<math>\sin\frac{\theta}{n} = \Im\left(\sqrt[n]{\cos\theta+i\sin\theta}\right) = \frac{1}{2i}\left(\sqrt[n]{\cos\theta+i\sin\theta}-\sqrt[n]{\cos\theta-i\sin\theta}\right)</math> |
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例如: |
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:<math>\sin{1^\circ} = \frac{1}{2i}\left(\sqrt[3]{\cos{3^\circ}+i\sin{3^\circ}}-\sqrt[3]{\cos{3^\circ}-i\sin{3^\circ}}\right)</math> |
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::<math>= \frac{1}{4\sqrt[3]{2}i}\Bigg\{\sqrt[3]{\left[2(1+\sqrt3)\sqrt{5+\sqrt5}+\sqrt2(\sqrt5-1)(\sqrt3-1)\right]+i\left[2(1-\sqrt3)\sqrt{5+\sqrt5}+\sqrt2(\sqrt5-1)(\sqrt3+1)\right]}</math> |
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:::<math>-\sqrt[3]{\left[2(1+\sqrt3)\sqrt{5+\sqrt5}+\sqrt2(\sqrt5-1)(\sqrt3-1)\right]-i\left[2(1-\sqrt3)\sqrt{5+\sqrt5}+\sqrt2(\sqrt5-1)(\sqrt3+1)\right]}\Bigg\}</math><ref>由[[Wolfram Alpha]]验算:[http://www.wolframalpha.com/input/?i=N%5BIm%5B1%2F%282*2%5E%281%2F3%29%29*%28%282%281%2BSqrt%5B3%5D%29*Sqrt%5B5%2BSqrt%5B5%5D%5D%2BSqrt%5B2%5D%28Sqrt%5B5%5D-1%29%28Sqrt%5B3%5D-1%29%29%2Bi%282%281-Sqrt%5B3%5D%29*Sqrt%5B5%2BSqrt%5B5%5D%5D%2BSqrt%5B2%5D%28Sqrt%5B5%5D-1%29%28Sqrt%5B3%5D%2B1%29%29%29%5E%281%2F3%29%5D-Sin%5BPi%2F180%5D%5D%5D] {{Wayback|url=http://www.wolframalpha.com/input/?i=N%5BIm%5B1%2F%282*2%5E%281%2F3%29%29*%28%282%281%2BSqrt%5B3%5D%29*Sqrt%5B5%2BSqrt%5B5%5D%5D%2BSqrt%5B2%5D%28Sqrt%5B5%5D-1%29%28Sqrt%5B3%5D-1%29%29%2Bi%282%281-Sqrt%5B3%5D%29*Sqrt%5B5%2BSqrt%5B5%5D%5D%2BSqrt%5B2%5D%28Sqrt%5B5%5D-1%29%28Sqrt%5B3%5D%2B1%29%29%29%5E%281%2F3%29%5D-Sin%5BPi%2F180%5D%5D%5D |date=20160304134914 }}</ref> |
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===經由和角公式的計算=== |
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例如:21° = 9° + 12° |
例如:21° = 9° + 12° |
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:<math>\sin(x \pm y) = \sin(x) \cos(y) \pm \cos(x) \sin(y)\,</math> |
:<math>\sin(x \pm y) = \sin(x) \cos(y) \pm \cos(x) \sin(y)\,</math> |
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===經由托勒密定理的計算=== |
===經由托勒密定理的計算=== |
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{{see|托勒密定理|弦函數}} |
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{{see|en:Ptolemy's theorem|en:Chord (geometry)}} |
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[[File:Ptolemy Pentagon.svg |
[[File:Ptolemy Pentagon.svg|thumb|Chord(36°) = a/b = 1/φ, 根据[[托勒密定理]]]] |
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例如:18° |
例如:18° |
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: <math>\mathrm{crd}\ {36^\circ}=\mathrm{crd}\left(\angle\mathrm{ADB}\right)=\frac{a}{b}=\frac{2}{1+\sqrt{5}}</math> |
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根據托勒密定理,在[[圓內接四邊形]]ABCD中, |
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: <math>\mathrm{crd}\ {\theta}=2\sin{\frac{\theta}{2}}\,</math> |
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:<math>a^2+ab=b^2</math> |
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:<math>\left(\frac{a}{b}\right)^2+\frac{a}{b}=1</math> |
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:<math>\mathrm{crd}\ {36^\circ}=\mathrm{crd}\left(\angle\mathrm{ADB}\right)=\frac{a}{b}=\frac{\sqrt{5}-1}{2}</math> |
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:<math>\mathrm{crd}\ {\theta}=2\sin{\frac{\theta}{2}}\,</math> |
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:<math>\sin{18^\circ}=\frac{\sqrt5-1}{4}</math> |
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== 三角函数精确值列表 == |
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: <math>\sin{18^\circ}=\frac{1}{1+\sqrt{5}}=\tfrac{1}{4}\left(\sqrt5-1\right)</math> |
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由于三角函数的特性,大于45°角度的三角函数值,可以经由自0°~45°的角度的三角函数值的相关的计算取得。 |
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=== 0°:根本=== |
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== 三角函數精確值列表 == |
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由於三角函數的特性,大於45°角度的三角函數值,可以經由自0°~ 45°的角度的三角函數值的相關的計算取得。 |
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=== 0°: 根本=== |
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: <math>\sin 0=0\,</math> |
: <math>\sin 0=0\,</math> |
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: <math>\cos 0=1\,</math> |
: <math>\cos 0=1\,</math> |
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: <math>\tan 0=0\,</math> |
: <math>\tan 0=0\,</math> |
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=== |
=== 1°:2°的一半=== |
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:<math>\sin{1^\circ} = \frac{1+\sqrt{3}i}{16}\sqrt[3]{4\sqrt{30}-8\sqrt{15+3\sqrt{5}}+8\sqrt{5+\sqrt{5}}+4\sqrt{10}-4\sqrt{6}-4\sqrt{2}+\left(4\sqrt{30}+8\sqrt{15+3\sqrt{5}}+8\sqrt{5+\sqrt{5}}-4\sqrt{10}-4\sqrt{6}+4\sqrt{2}\right)i}+</math> |
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::::<math>\frac{1-\sqrt{3}i}{16}\sqrt[3]{4\sqrt{30}-8\sqrt{15+3\sqrt{5}}+8\sqrt{5+\sqrt{5}}+4\sqrt{10}-4\sqrt{6}-4\sqrt{2}-\left(4\sqrt{30}+8\sqrt{15+3\sqrt{5}}+8\sqrt{5+\sqrt{5}}-4\sqrt{10}-4\sqrt{6}+4\sqrt{2}\right)i}</math><ref>使用Mathematica驗算,代碼為N[ArcSin[(1 + Sqrt[3] I)/16 Power[4 Sqrt[30] - 8 Sqrt[15 + 3 Sqrt[5]] + 8 Sqrt[5 + Sqrt[5]] + 4 Sqrt[10] - 4 Sqrt[6] - 4 Sqrt[2] + (4 Sqrt[30] + 8 Sqrt[15 + 3 Sqrt[5]] + 8 Sqrt[5 + Sqrt[5]] - 4 Sqrt[10] - 4 Sqrt[6] + 4 Sqrt[2]) I, (3)^-1] + (1 - Sqrt[3] I)/16 Power[4 Sqrt[30] - 8 Sqrt[15 + 3 Sqrt[5]] + 8 Sqrt[5 + Sqrt[5]] + 4 Sqrt[10] - 4 Sqrt[6] - 4 Sqrt[2] - (4 Sqrt[30] + 8 Sqrt[15 + 3 Sqrt[5]] + 8 Sqrt[5 + Sqrt[5]] - 4 Sqrt[10] - 4 Sqrt[6] + 4 Sqrt[2]) I, (3)^-1]], 100]/Degree結果為1與原角度無誤差</ref> |
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: <math>\cos\frac{\pi}{60}=\cos 3^\circ=\tfrac{1}{16} \left[2(1+\sqrt3)\sqrt{5+\sqrt5}+\sqrt2(\sqrt5-1)(\sqrt3-1)\right]\,</math> |
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=== 1.5°:正一百二十边形=== |
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:<math>\sin\left(\frac{\pi}{120}\right) = \sin\left(1.5^\circ\right) = \frac{\left(\sqrt{2+\sqrt2}\right)\left(\sqrt{15}+\sqrt3-\sqrt{10-2\sqrt5}\right) - \left(\sqrt{2-\sqrt2}\right)\left(\sqrt{30-6\sqrt5}+\sqrt5+1\right)}{16}</math> |
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:<math>\cos\left(\frac{\pi}{120}\right) = \cos\left(1.5^\circ\right) = \frac{\left(\sqrt{2+\sqrt2}\right)\left(\sqrt{30-6\sqrt5}+\sqrt5+1\right) + \left(\sqrt{2-\sqrt2}\right)\left(\sqrt{15}+\sqrt3-\sqrt{10-2\sqrt5}\right)}{16}</math> |
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=== 1.875°:正九十六边形=== |
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:<math>\sin\left(\frac{\pi}{96}\right) = \sin\left(1.875^\circ\right) = \frac12\sqrt{2-\sqrt{2+\sqrt{2+\sqrt{2+\sqrt{3}}}}}</math> |
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:<math>\cos\left(\frac{\pi}{96}\right) = \cos\left(1.875^\circ\right) = \frac12\sqrt{2+\sqrt{2+\sqrt{2+\sqrt{2+\sqrt{3}}}}}</math> |
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:<math>\tan\left(\frac{\pi}{96}\right) = \tan\left(1.875^\circ\right) = \frac{\sqrt{2-\sqrt{\sqrt{\sqrt{\sqrt{3}+2}+2}+2}}}{\sqrt{\sqrt{\sqrt{\sqrt{\sqrt{3}+2}+2}+2}+2}}</math> |
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=== 2°:6°的三分之一=== |
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:<math>\sin{2^\circ} = \frac{1}{2i}\left(\sqrt[3]{\cos{6^\circ}+i\sin{6^\circ}}-\sqrt[3]{\cos{6^\circ}-i\sin{6^\circ}}\right)</math> |
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::<math>= \frac{1}{4i}\Bigg\{\sqrt[3]{\left[\sqrt{2(5-\sqrt5)}+\sqrt3(\sqrt5+1)\right]+i\left[\sqrt{6(5-\sqrt5)}-\sqrt5-1\right]}</math> |
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:::<math>-\sqrt[3]{\left[\sqrt{2(5-\sqrt5)}+\sqrt3(\sqrt5+1)\right]-i\left[\sqrt{6(5-\sqrt5)}-\sqrt5-1\right]}\Bigg\}</math> |
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:<math>\cos{2^\circ} = \frac{1}{2}\left(\sqrt[3]{\cos{6^\circ}+i\sin{6^\circ}}+\sqrt[3]{\cos{6^\circ}-i\sin{6^\circ}}\right)</math> |
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::<math>= \frac{1}{4}\Bigg\{\sqrt[3]{\left[\sqrt{2(5-\sqrt5)}+\sqrt3(\sqrt5+1)\right]+i\left[\sqrt{6(5-\sqrt5)}-\sqrt5-1\right]}</math> |
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:::<math>+\sqrt[3]{\left[\sqrt{2(5-\sqrt5)}+\sqrt3(\sqrt5+1)\right]-i\left[\sqrt{6(5-\sqrt5)}-\sqrt5-1\right]}\Bigg\}</math> |
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=== 2.25°:正八十边形 === |
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:<math>\sin\left(\frac{\pi}{80}\right) = \sin\left(2.25^\circ\right) =\frac{\sqrt{-2\sqrt{2}\sqrt{\sqrt{2}\sqrt{\sqrt{2}\sqrt{\sqrt{5}+5}+4}+4}+8}}{4}</math> |
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:<math>\cos\left(\frac{\pi}{80}\right) = \cos\left(2.25^\circ\right) =\frac{\sqrt{2\sqrt{2}\sqrt{\sqrt{2}\sqrt{\sqrt{2}\sqrt{\sqrt{5}+5}+4}+4}+8}}{4}</math> |
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:<math>\tan\left(\frac{\pi}{80}\right) = \tan\left(2.25^\circ\right) =\frac{\sqrt{-\sqrt{2}\sqrt{\sqrt{2}\sqrt{\sqrt{2}\sqrt{\sqrt{5}+5}+4}+4}+4}}{\sqrt{\sqrt{2}\sqrt{\sqrt{2}\sqrt{\sqrt{2}\sqrt{\sqrt{5}+5}+4}+4}+4}}</math> |
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:<math>\cot\left(\frac{\pi}{80}\right) = \cot\left(2.25^\circ\right) =\frac{\sqrt{\sqrt{2}\sqrt{\sqrt{2}\sqrt{\sqrt{2}\sqrt{\sqrt{5}+5}+4}+4}+4}}{\sqrt{-\sqrt{2}\sqrt{\sqrt{2}\sqrt{\sqrt{2}\sqrt{\sqrt{5}+5}+4}+4}+4}}</math> |
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:<math>\sec\left(\frac{\pi}{80}\right) = \sec\left(2.25^\circ\right) =\frac{2\sqrt{2}}{\sqrt{\sqrt{2}\sqrt{\sqrt{2}\sqrt{\sqrt{2}\sqrt{\sqrt{5}+5}+4}+4}+4}}</math> |
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:<math>\csc\left(\frac{\pi}{80}\right) = \csc\left(2.25^\circ\right) =\frac{2\sqrt{2}}{\sqrt{-\sqrt{2}\sqrt{\sqrt{2}\sqrt{\sqrt{2}\sqrt{\sqrt{5}+5}+4}+4}+4}}</math> |
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=== 2.8125°:正六十四边形 === |
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:<math>\sin\left(\frac{\pi}{64}\right) = \sin\left(2.8125^\circ\right) = \frac12\sqrt{2-\sqrt{2+\sqrt{2+\sqrt{2+\sqrt{2}}}}}</math> |
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:<math>\cos\left(\frac{\pi}{64}\right) = \cos\left(2.8125^\circ\right) = \frac12\sqrt{2+\sqrt{2+\sqrt{2+\sqrt{2+\sqrt{2}}}}}</math> |
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=== 3°:正六十边形 === |
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: <math>\sin\frac{\pi}{60}=\sin 3^\circ=\tfrac{1}{4} \sqrt{8-\sqrt3-\sqrt{15}-\sqrt{10-2\sqrt5}}\,</math> |
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: <math>\cos\frac{\pi}{60}=\cos 3^\circ=\tfrac{1}{4} \sqrt{8+\sqrt3+\sqrt{15}+\sqrt{10-2\sqrt5}}\,</math> |
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: <math>\tan\frac{\pi}{60}=\tan 3^\circ=\tfrac{1}{4} \left[(2-\sqrt3)(3+\sqrt5)-2\right]\left[2-\sqrt{2(5-\sqrt5)}\right]\,</math> |
: <math>\tan\frac{\pi}{60}=\tan 3^\circ=\tfrac{1}{4} \left[(2-\sqrt3)(3+\sqrt5)-2\right]\left[2-\sqrt{2(5-\sqrt5)}\right]\,</math> |
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=== |
=== 3.75°:正四十八边形 === |
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:<math>\sin\left(\frac{\pi}{48}\right) = \sin\left(3.75^\circ\right) = \frac12\sqrt{2-\sqrt{2+\sqrt{2+\sqrt{3}}}}</math> |
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:<math>\cos\left(\frac{\pi}{48}\right) = \cos\left(3.75^\circ\right) = \frac12\sqrt{2+\sqrt{2+\sqrt{2+\sqrt{3}}}}</math> |
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=== 4°:12°的三分之一 === |
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:<math>\sin{4^\circ} = \frac{1}{2i}\left(\sqrt[3]{\cos{12^\circ}+i\sin{12^\circ}}-\sqrt[3]{\cos{12^\circ}-i\sin{12^\circ}}\right)</math> |
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::<math>= \frac{1}{4i}\Bigg\{\sqrt[3]{\left[\sqrt{6(5+\sqrt5)}+\sqrt5-1\right]+i\left[\sqrt{2(5+\sqrt5)}-\sqrt3(\sqrt5-1)\right]}</math> |
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:::<math>-\sqrt[3]{\left[\sqrt{6(5+\sqrt5)}+\sqrt5-1\right]-i\left[\sqrt{2(5+\sqrt5)}-\sqrt3(\sqrt5-1)\right]}\Bigg\}</math> |
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:<math>\cos{4^\circ} = \frac{1}{2}\left(\sqrt[3]{\cos{12^\circ}+i\sin{12^\circ}}+\sqrt[3]{\cos{12^\circ}-i\sin{12^\circ}}\right)</math> |
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::<math>= \frac{1}{4}\Bigg\{\sqrt[3]{\left[\sqrt{6(5+\sqrt5)}+\sqrt5-1\right]+i\left[\sqrt{2(5+\sqrt5)}-\sqrt3(\sqrt5-1)\right]}</math> |
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:::<math>+\sqrt[3]{\left[\sqrt{6(5+\sqrt5)}+\sqrt5-1\right]-i\left[\sqrt{2(5+\sqrt5)}-\sqrt3(\sqrt5-1)\right]}\Bigg\}</math> |
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=== 4.5°:正四十边形 === |
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:<math>\sin\left(\frac{\pi}{40}\right) = \sin\left(4.5^\circ\right) =\frac{1}{2} \sqrt{2-\sqrt{2+\sqrt{\frac{5+\sqrt{5}}{2}}}}</math> |
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:<math>\cos\left(\frac{\pi}{40}\right) = \cos\left(4.5^\circ\right) =\frac{1}{2}\sqrt{2+\sqrt{2+\sqrt{\frac{5+\sqrt{5}}{2}}}}</math> |
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=== 5°:15°的三分之一、正三十六边形 === |
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: <math>\sin\frac{\pi}{36}=\sin 5^\circ = \frac{2 - 2\sqrt{3}\mathrm{i}}{2 \sqrt[3]{2(\sqrt{2} - \sqrt{6})} - 2-\sqrt{3}} - \frac{(1 + \sqrt{3}\mathrm{i}) \sqrt[3]{2(\sqrt{2} - \sqrt{6})} -2-\sqrt{3}}{8}\,</math> |
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=== 5.625°:正三十二边形=== |
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:<math>\sin\left(\frac{\pi}{32}\right) = \sin\left(5.625^\circ\right) = \frac12\sqrt{2-\sqrt{2+\sqrt{2+\sqrt{2}}}}</math> |
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:<math>\cos\left(\frac{\pi}{32}\right) = \cos\left(5.625^\circ\right) = \frac12\sqrt{2+\sqrt{2+\sqrt{2+\sqrt{2}}}}</math> |
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=== 6°:正三十边形=== |
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: <math>\sin\frac{\pi}{30}=\sin 6^\circ=\tfrac{1}{8} \left[\sqrt{6(5-\sqrt5)}-\sqrt5-1\right]\,</math> |
: <math>\sin\frac{\pi}{30}=\sin 6^\circ=\tfrac{1}{8} \left[\sqrt{6(5-\sqrt5)}-\sqrt5-1\right]\,</math> |
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: <math>\cos\frac{\pi}{30}=\cos 6^\circ=\tfrac{1}{8} \left[\sqrt{2(5-\sqrt5)}+\sqrt3(\sqrt5+1)\right]\,</math> |
: <math>\cos\frac{\pi}{30}=\cos 6^\circ=\tfrac{1}{8} \left[\sqrt{2(5-\sqrt5)}+\sqrt3(\sqrt5+1)\right]\,</math> |
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: <math>\tan\frac{\pi}{30}=\tan 6^\circ=\tfrac{1}{2} \left[\sqrt{2(5-\sqrt5)}-\sqrt3(\sqrt5-1)\right]\,</math> |
: <math>\tan\frac{\pi}{30}=\tan 6^\circ=\tfrac{1}{2} \left[\sqrt{2(5-\sqrt5)}-\sqrt3(\sqrt5-1)\right]\,</math> |
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: <math>\cot\frac{\pi}{30}=\cot 6^\circ=\tfrac{1}{2} \left(\sqrt{50+22\sqrt5}+3\sqrt3+\sqrt{15}\right)\,</math> |
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: <math>\sec\frac{\pi}{30}=\sec 6^\circ=\sqrt3-\sqrt{5-2\sqrt5}\,</math> |
|||
: <math>\csc\frac{\pi}{30}=\csc 6^\circ=2+\sqrt5+\sqrt{15+6\sqrt5}\,</math> |
|||
=== |
=== 7.5°:正二十四边形 === |
||
: <math>\sin\frac{\pi}{ |
: <math>\sin\frac{\pi}{24}=\sin 7.5^\circ=\tfrac{1}{4} \sqrt{8-2\sqrt6-2\sqrt2}\,</math> |
||
: <math>\cos\frac{\pi}{ |
: <math>\cos\frac{\pi}{24}=\cos 7.5^\circ=\tfrac{1}{4} \sqrt{8+2\sqrt6+2\sqrt2}\,</math> |
||
: <math>\tan\frac{\pi}{24}=\tan 7.5^\circ=\sqrt6+\sqrt2-2-\sqrt3\,</math> |
|||
: <math>\cot\frac{\pi}{24}=\cot 7.5^\circ=\sqrt6+\sqrt2+2+\sqrt3\,</math> |
|||
: <math>\sec\frac{\pi}{24}=\sec 7.5^\circ=\sqrt{16-6\sqrt6-10\sqrt2+8\sqrt3}\,</math> |
|||
: <math>\csc\frac{\pi}{24}=\csc 7.5^\circ=\sqrt{16+6\sqrt6+10\sqrt2+8\sqrt3}\,</math> |
|||
=== 9°:正二十边形=== |
|||
{{see|二十边形}} |
|||
: <math>\sin\frac{\pi}{20}=\sin 9^\circ=\tfrac{1}{4} \sqrt{8-2\sqrt{10+2\sqrt5}}\,</math> |
|||
: <math>\cos\frac{\pi}{20}=\cos 9^\circ=\tfrac{1}{4} \sqrt{8+2\sqrt{10+2\sqrt5}}\,</math> |
|||
: <math>\tan\frac{\pi}{20}=\tan 9^\circ=\sqrt5+1-\sqrt{5+2\sqrt5}\,</math> |
: <math>\tan\frac{\pi}{20}=\tan 9^\circ=\sqrt5+1-\sqrt{5+2\sqrt5}\,</math> |
||
: <math>\cot\frac{\pi}{20}=\cot9^\circ=\sqrt5+1+\sqrt{5+2\sqrt5}\,</math> |
|||
=== |
=== 10°:正十八边形 === |
||
{{see|十八边形}} |
|||
:<math>{\tan10^\circ=-\frac{-1-\sqrt{3}{\rm{i}}}{6}\sqrt[3]{-12\sqrt3 + 36{\rm{i}}}-\frac{-1+\sqrt{3}{\rm{i}}}{6}\sqrt[3]{-12\sqrt3 - 36{\rm{i}}} + \frac{1}{\sqrt3}}\,</math> |
|||
=== 11.25°:正十六边形 === |
|||
:<math>\sin\frac{\pi}{16}=\sin 11.25^\circ=\frac{1}{2}\sqrt{2-\sqrt{2+\sqrt{2}}}</math> |
|||
:<math>\cos\frac{\pi}{16}=\cos 11.25^\circ=\frac{1}{2}\sqrt{2+\sqrt{2+\sqrt{2}}}</math> |
|||
:<math>\tan\frac{\pi}{16}=\tan 11.25^\circ=\sqrt{4+2\sqrt{2}}-\sqrt{2}-1</math> |
|||
:<math>\cot\frac{\pi}{16}=\cot 11.25^\circ=\sqrt{4+2\sqrt{2}}+\sqrt{2}+1</math> |
|||
=== 12°:正十五边形 === |
|||
{{see|十五边形}} |
|||
: <math>\sin\frac{\pi}{15}=\sin 12^\circ=\tfrac{1}{8} \left[\sqrt{2(5+\sqrt5)}-\sqrt3(\sqrt5-1)\right]\,</math> |
: <math>\sin\frac{\pi}{15}=\sin 12^\circ=\tfrac{1}{8} \left[\sqrt{2(5+\sqrt5)}-\sqrt3(\sqrt5-1)\right]\,</math> |
||
: <math>\cos\frac{\pi}{15}=\cos 12^\circ=\tfrac{1}{8} \left[\sqrt{6(5+\sqrt5)}+\sqrt5-1\right]\,</math> |
: <math>\cos\frac{\pi}{15}=\cos 12^\circ=\tfrac{1}{8} \left[\sqrt{6(5+\sqrt5)}+\sqrt5-1\right]\,</math> |
||
: <math>\tan\frac{\pi}{15}=\tan 12^\circ=\tfrac{1}{2} \left[\sqrt3(3-\sqrt5)-\sqrt{2(25-11\sqrt5)}\right]\,</math> |
: <math>\tan\frac{\pi}{15}=\tan 12^\circ=\tfrac{1}{2} \left[\sqrt3(3-\sqrt5)-\sqrt{2(25-11\sqrt5)}\right]\,</math> |
||
=== 15° |
=== 15°:正十二边形 === |
||
: <math>\sin\frac{\pi}{12}=\sin 15^\circ=\tfrac{1}{4}\sqrt2(\sqrt3-1)\,</math> |
|||
{{see|十二边形}} |
|||
: <math>\cos\frac{\pi}{12}=\cos 15^\circ=\tfrac{1}{4}\sqrt2(\sqrt3+1)\,</math> |
|||
: <math>\sin\frac{\pi}{12}=\sin 15^\circ=\frac{1}{4}\sqrt2\left(\sqrt3-1\right)\,</math> |
|||
: <math>\cos\frac{\pi}{12}=\cos 15^\circ=\frac{1}{4}\sqrt2\left(\sqrt3+1\right)\,</math> |
|||
: <math>\tan\frac{\pi}{12}=\tan 15^\circ=2-\sqrt3\,</math> |
: <math>\tan\frac{\pi}{12}=\tan 15^\circ=2-\sqrt3\,</math> |
||
: <math>\cot\frac{\pi}{12}=\cot 15^\circ=2+\sqrt3\,</math> |
|||
=== 18° |
=== 18°:正十边形 === |
||
{{see|十边形}} |
|||
: <math>\sin\frac{\pi}{10}=\sin 18^\circ=\tfrac{1}{4}\left(\sqrt5-1\right)=\tfrac{1}{2}\varphi^{-1}\,</math> |
: <math>\sin\frac{\pi}{10}=\sin 18^\circ=\tfrac{1}{4}\left(\sqrt5-1\right)=\tfrac{1}{2}\varphi^{-1}\,</math> |
||
: <math>\cos\frac{\pi}{10}=\cos 18^\circ=\tfrac{1}{4}\sqrt{2(5+\sqrt5)}\,</math> |
: <math>\cos\frac{\pi}{10}=\cos 18^\circ=\tfrac{1}{4}\sqrt{2\left(5+\sqrt5\right)}\,</math> |
||
: <math>\tan\frac{\pi}{10}=\tan 18^\circ=\tfrac{1}{5}\sqrt{5(5-2\sqrt5)}\,</math> |
: <math>\tan\frac{\pi}{10}=\tan 18^\circ=\tfrac{1}{5}\sqrt{5\left(5-2\sqrt5\right)}\,</math> |
||
=== 20° |
=== 20°:正九边形、60°的三分之一 === |
||
{{see|九边形}} |
|||
: <math>\sin\frac{\pi}{9}=\sin 20^\circ=\sqrt[3]{-\frac{\sqrt{3}}{16}+\sqrt{-\frac{1}{256}}}+\sqrt[3]{-\frac{\sqrt{3}}{16}-\sqrt{-\frac{1}{256}}}=</math> |
: <math>\sin\frac{\pi}{9}=\sin 20^\circ=\sqrt[3]{-\frac{\sqrt{3}}{16}+\sqrt{-\frac{1}{256}}}+\sqrt[3]{-\frac{\sqrt{3}}{16}-\sqrt{-\frac{1}{256}}}=</math> |
||
:: <math>2^{-\frac{4}{3}}(\sqrt[3]{i-\sqrt{3}}-\sqrt[3]{i+\sqrt{3}})</math> |
:: <math>2^{-\frac{4}{3}}\left(\sqrt[3]{i-\sqrt{3}}-\sqrt[3]{i+\sqrt{3}}\right)</math> |
||
: <math>\cos\frac{\pi}{9}=\cos 20^\circ=</math> |
: <math>\cos\frac{\pi}{9}=\cos 20^\circ=</math> |
||
:: <math>2^{-\frac{4}{3}}(\sqrt[3]{1+i\sqrt{3}}+\sqrt[3]{1-i\sqrt{3}})</math> |
:: <math>2^{-\frac{4}{3}}\left(\sqrt[3]{1+i\sqrt{3}}+\sqrt[3]{1-i\sqrt{3}}\right)</math> |
||
=== 21°:9°与12°的和 === |
|||
: <math>\sin\frac{7\pi}{60}=\sin 21^\circ=\tfrac{1}{4}\sqrt{8+\sqrt3-\sqrt{15}-\sqrt{10+2\sqrt5}}\,</math> |
|||
: <math>\cos\frac{7\pi}{60}=\cos 21^\circ=\tfrac{1}{4}\sqrt{8-\sqrt3+\sqrt{15}+\sqrt{10+2\sqrt5}}\,</math> |
|||
: <math>\tan\frac{7\pi}{60}=\tan 21^\circ=\tfrac{1}{4}\left[2-\left(2+\sqrt3\right)\left(3-\sqrt5\right)\right]\left[2-\sqrt{2\left(5+\sqrt5\right)}\right]\,</math> |
|||
=== 360/17°,<math>\mathbf{\left(21\frac{3}{17}\right)^{\circ}}</math>,<math>\mathbf{\left(\frac{360}{17}\right)^{\circ}}</math>:正十七边形=== |
|||
{{see|十七边形}} |
|||
:<math>\operatorname{cos}{2\pi\over17}=\frac{-1+\sqrt{17}+\sqrt{34-2\sqrt{17}}+2\sqrt{17+3\sqrt{17}-\sqrt{34-2\sqrt{17}}-2\sqrt{34+2\sqrt{17}}}}{16}</math> |
|||
=== |
=== 22.5°:正八边形 === |
||
: <math>\sin\frac{7\pi}{60}=\sin 21^\circ=\tfrac{1}{16}\left[2(\sqrt3+1)\sqrt{5-\sqrt5}-\sqrt2(\sqrt3-1)(1+\sqrt5)\right]\,</math> |
|||
: <math>\cos\frac{7\pi}{60}=\cos 21^\circ=\tfrac{1}{16}\left[2(\sqrt3-1)\sqrt{5-\sqrt5}+\sqrt2(\sqrt3+1)(1+\sqrt5)\right]\,</math> |
|||
: <math>\tan\frac{7\pi}{60}=\tan 21^\circ=\tfrac{1}{4}\left[2-(2+\sqrt3)(3-\sqrt5)\right]\left[2-\sqrt{2(5+\sqrt5)}\right]\,</math> |
|||
{{see|八边形}} |
|||
: <math>\sin\frac{\pi}{8}=\sin 22.5^\circ=\tfrac{1}{2}(\sqrt{2-\sqrt{2}}) |
: <math>\sin\frac{\pi}{8}=\sin 22.5^\circ=\tfrac{1}{2} \left( \sqrt{2-\sqrt{2}} \right)</math> |
||
: <math>\cos\frac{\pi}{8}=\cos 22.5^\circ=\tfrac{1}{2}(\sqrt{2+\sqrt{2}})\,</math> |
: <math>\cos\frac{\pi}{8}=\cos 22.5^\circ=\tfrac{1}{2} \left( \sqrt{2+\sqrt{2}} \right)\,</math> |
||
: <math>\tan\frac{\pi}{8}=\tan 22.5^\circ=\sqrt{2}-1\,</math> |
: <math>\tan\frac{\pi}{8}=\tan 22.5^\circ=\sqrt{2}-1\,</math> |
||
=== 24° |
=== 24°:12°的二倍 === |
||
: <math>\sin\frac{2\pi}{15}=\sin 24^\circ=\tfrac{1}{8}\left[\sqrt3(\sqrt5+1)-\sqrt2\sqrt{5-\sqrt5}\right]\,</math> |
: <math>\sin\frac{2\pi}{15}=\sin 24^\circ=\tfrac{1}{8}\left[\sqrt3(\sqrt5+1)-\sqrt2\sqrt{5-\sqrt5}\right]\,</math> |
||
: <math>\cos\frac{2\pi}{15}=\cos 24^\circ=\tfrac{1}{8}\left(\sqrt6\sqrt{5-\sqrt5}+\sqrt5+1\right)\,</math> |
: <math>\cos\frac{2\pi}{15}=\cos 24^\circ=\tfrac{1}{8}\left(\sqrt6\sqrt{5-\sqrt5}+\sqrt5+1\right)\,</math> |
||
: <math>\tan\frac{2\pi}{15}=\tan 24^\circ=\tfrac{1}{2}\left[\sqrt{2(25+11\sqrt5)}-\sqrt3(3+\sqrt5)\right]\,</math> |
: <math>\tan\frac{2\pi}{15}=\tan 24^\circ=\tfrac{1}{2}\left[\sqrt{2(25+11\sqrt5)}-\sqrt3(3+\sqrt5)\right]\,</math> |
||
=== 25(6/7)°,(180/7)°:正七邊形=== |
|||
: <math>\cos\frac{\pi}{7}=\cos\frac{180}{7}^\circ=\cos 25\frac{6}{7}^\circ=\frac{1}{6}+\frac{1-\sqrt{3} i}{24}\sqrt[3]{28-84\sqrt{3} i}+\frac{1+\sqrt{3} i}{24}\sqrt[3]{28-84\sqrt{3} i}</math> |
|||
=== 180/7°,<math>\mathbf{\left(25\frac{5}{7}\right)^{\circ}}</math>,<math>\mathbf{\left(\frac{180}{7}\right)^{\circ}}</math>:正七边形=== |
|||
=== 27°: 12° 與 15° 的和=== |
|||
{{see|七边形}} |
|||
: <math>\cos\frac{\pi}{7}=\cos\frac{180}{7}^\circ=\cos 25\frac{5}{7}^\circ=\frac{1}{6}+\frac{1-\sqrt{3} i}{24}\sqrt[3]{28-84\sqrt{3} i}+\frac{1+\sqrt{3} i}{24}\sqrt[3]{28-84\sqrt{3} i}</math> |
|||
=== 27°:12°与15°的和=== |
|||
: <math>\sin\frac{3\pi}{20}=\sin 27^\circ=\tfrac{1}{8}\left[2\sqrt{5+\sqrt5}-\sqrt2\;(\sqrt5-1)\right]\,</math> |
: <math>\sin\frac{3\pi}{20}=\sin 27^\circ=\tfrac{1}{8}\left[2\sqrt{5+\sqrt5}-\sqrt2\;(\sqrt5-1)\right]\,</math> |
||
: <math>\cos\frac{3\pi}{20}=\cos 27^\circ=\tfrac{1}{8}\left[2\sqrt{5+\sqrt5}+\sqrt2\;(\sqrt5-1)\right]\,</math> |
: <math>\cos\frac{3\pi}{20}=\cos 27^\circ=\tfrac{1}{8}\left[2\sqrt{5+\sqrt5}+\sqrt2\;\left(\sqrt5-1\right)\right]\,</math> |
||
: <math>\tan\frac{3\pi}{20}=\tan 27^\circ=\sqrt5-1-\sqrt{5-2\sqrt5}\,</math> |
: <math>\tan\frac{3\pi}{20}=\tan 27^\circ=\sqrt5-1-\sqrt{5-2\sqrt5}\,</math> |
||
=== 30° |
=== 30°:正六边形 === |
||
{{see|六边形}} |
|||
: <math>\sin\frac{\pi}{6}=\sin 30^\circ=\tfrac{1}{2}\,</math> |
: <math>\sin\frac{\pi}{6}=\sin 30^\circ=\tfrac{1}{2}\,</math> |
||
: <math>\cos\frac{\pi}{6}=\cos 30^\circ=\tfrac{1}{2}\sqrt3\,</math> |
: <math>\cos\frac{\pi}{6}=\cos 30^\circ=\tfrac{1}{2}\sqrt3\,</math> |
||
: <math>\tan\frac{\pi}{6}=\tan 30^\circ=\tfrac{1}{3}\sqrt3\,</math> |
: <math>\tan\frac{\pi}{6}=\tan 30^\circ=\tfrac{1}{3}\sqrt3\,</math> |
||
=== 33° |
=== 33°:15°与18°的和 === |
||
: <math>\sin\frac{11\pi}{60}=\sin 33^\circ=\tfrac{1}{ |
: <math>\sin\frac{11\pi}{60}=\sin 33^\circ=\tfrac{1}{4}\sqrt{8-\sqrt3-\sqrt{15}+\sqrt{10-2\sqrt5}}\,</math> |
||
: <math>\cos\frac{11\pi}{60}=\cos 33^\circ=\tfrac{1}{ |
: <math>\cos\frac{11\pi}{60}=\cos 33^\circ=\tfrac{1}{4}\sqrt{8+\sqrt3+\sqrt{15}-\sqrt{10-2\sqrt5}}\,</math> |
||
: <math>\tan\frac{11\pi}{60}=\tan 33^\circ=\tfrac{1}{4}\left |
: <math>\tan\frac{11\pi}{60}=\tan 33^\circ=\tfrac{1}{4}\left(2\sqrt3-\sqrt5-1\right)\left(2\sqrt{5+2\sqrt5}+3+\sqrt5\right)\,</math> |
||
: <math>\cot\frac{11\pi}{60}=\cot33^\circ=\tfrac{1}{4}\left(2\sqrt3+\sqrt5+1\right)\left(2\sqrt{5+2\sqrt5}-3-\sqrt5\right)\,</math> |
|||
=== 36° |
=== 36°:正五边形 === |
||
: <math>\sin\frac{\pi}{5}=\sin 36^\circ=\tfrac14[\sqrt{2(5-\sqrt5)}]\,</math> |
|||
{{see|五边形}} |
|||
: <math>\sin\frac{\pi}{5}=\sin 36^\circ=\tfrac14\left[\sqrt{2\left(5-\sqrt5\right)}\right]\,</math> |
|||
: <math>\cos\frac{\pi}{5}=\cos 36^\circ=\frac{1+\sqrt5}{4}=\tfrac{1}{2}\varphi\,</math> |
: <math>\cos\frac{\pi}{5}=\cos 36^\circ=\frac{1+\sqrt5}{4}=\tfrac{1}{2}\varphi\,</math> |
||
: <math>\tan\frac{\pi}{5}=\tan 36^\circ=\sqrt{5-2\sqrt5}\,</math> |
: <math>\tan\frac{\pi}{5}=\tan 36^\circ=\sqrt{5-2\sqrt5}\,</math> |
||
=== 39° |
=== 39°:18°与21°的和 === |
||
: <math>\sin\frac{13\pi}{60}=\sin 39^\circ=\tfrac1{ |
: <math>\sin\frac{13\pi}{60}=\sin 39^\circ=\tfrac1{4}\sqrt{8-\sqrt3+\sqrt{15}+\sqrt{10+2\sqrt5}}\,</math> |
||
: <math>\cos\frac{13\pi}{60}=\cos 39^\circ=\tfrac1{ |
: <math>\cos\frac{13\pi}{60}=\cos 39^\circ=\tfrac1{4}\sqrt{8+\sqrt3-\sqrt{15}+\sqrt{10+2\sqrt5}}\,</math> |
||
: <math>\tan\frac{13\pi}{60}=\tan 39^\circ=\tfrac14\left[(2-\sqrt3)(3-\sqrt5)-2\right]\left[2-\sqrt{2(5+\sqrt5)}\right]\,</math> |
: <math>\tan\frac{13\pi}{60}=\tan 39^\circ=\tfrac14\left[\left(2-\sqrt3\right)\left(3-\sqrt5\right)-2\right]\left[2-\sqrt{2\left(5+\sqrt5\right)}\right]\,</math> |
||
=== 42° |
=== 42°:21°的2倍 === |
||
: <math>\sin\frac{7\pi}{30}=\sin 42^\circ=\frac{\sqrt6\sqrt{5+\sqrt5}-\sqrt5+1}{8}\,</math> |
: <math>\sin\frac{7\pi}{30}=\sin 42^\circ=\frac{\sqrt6\sqrt{5+\sqrt5}-\sqrt5+1}{8}\,</math> |
||
: <math>\cos\frac{7\pi}{30}=\cos 42^\circ=\frac{\sqrt2\sqrt{5+\sqrt5}+\sqrt3(\sqrt5-1)}{8}\,</math> |
: <math>\cos\frac{7\pi}{30}=\cos 42^\circ=\frac{\sqrt2\sqrt{5+\sqrt5}+\sqrt3\left(\sqrt5-1\right)}{8}\,</math> |
||
: <math>\tan\frac{7\pi}{30}=\tan 42^\circ=\ |
: <math>\tan\frac{7\pi}{30}=\tan 42^\circ=\frac1{2}\left(\sqrt3+\sqrt{15}-\sqrt{10+2\sqrt5}\right)\,</math> |
||
: <math>\cot\frac{7\pi}{30}=\cot 42^\circ=\frac1{2}\left(3\sqrt3-\sqrt{15}+\sqrt{50-22\sqrt5}\right)\,</math> |
|||
: <math>\sec\frac{7\pi}{30}=\sec 42^\circ=\sqrt{5+2\sqrt5}-\sqrt3\,</math> |
|||
: <math>\sec\frac{7\pi}{30}=\sec 42^\circ=\sqrt{15-6\sqrt5}+\sqrt5-2\,</math> |
|||
=== 45°:正方形 === |
|||
{{see|正方形}} |
|||
: <math>\sin\frac{\pi}{4}=\sin 45^\circ=\frac{\sqrt2}{2}=\frac{1}{\sqrt2}\,</math> |
: <math>\sin\frac{\pi}{4}=\sin 45^\circ=\frac{\sqrt2}{2}=\frac{1}{\sqrt2}\,</math> |
||
: <math>\cos\frac{\pi}{4}=\cos 45^\circ=\frac{\sqrt2}{2}=\frac{1}{\sqrt2}\,</math> |
: <math>\cos\frac{\pi}{4}=\cos 45^\circ=\frac{\sqrt2}{2}=\frac{1}{\sqrt2}\,</math> |
||
: <math>\tan\frac{\pi}{4}=\tan 45^\circ=1 |
: <math>\tan\frac{\pi}{4}=\tan 45^\circ=1</math> |
||
=== 48° === |
|||
: <math>\sin 48^\circ=\frac{1}{4}\sqrt{7-\sqrt{5}+\sqrt{6(5-\sqrt{5})}}</math> |
|||
===54°:27°与27°的和=== |
|||
:<math>\sin\frac{3\pi}{10}=\sin 54^\circ=\frac{\sqrt5+1}{4}\,\!</math> |
|||
:<math>\cos\frac{3\pi}{10}=\cos 54^\circ=\frac{\sqrt{10-2\sqrt{5}}}{4}</math> |
|||
:<math>\tan\frac{3\pi}{10}=\tan 54^\circ=\frac{\sqrt{25+10\sqrt{5}}}{5}\,</math> |
|||
:<math>\cot\frac{3\pi}{10}=\cot 54^\circ=\sqrt{5-2\sqrt{5}}\,</math> |
|||
===60°:等边三角形=== |
|||
:<math>\sin\frac{\pi}{3}=\sin 60^\circ=\frac{\sqrt3}{2}\,</math> |
|||
:<math>\cos\frac{\pi}{3}=\cos 60^\circ=\frac{1}{2}\,</math> |
|||
:<math>\tan\frac{\pi}{3}=\tan 60^\circ=\sqrt3\,</math> |
|||
:<math>\cot\frac{\pi}{3}=\cot 60^\circ=\frac{\sqrt3}{3}=\frac{1}{\sqrt3}\,</math> |
|||
===67.5°:7.5°与60°的和=== |
|||
:<math>\sin\frac{3\pi}{8}=\sin 67.5^\circ=\tfrac{1}{2}\sqrt{2+\sqrt{2}}\,</math> |
|||
:<math>\cos\frac{3\pi}{8}=\cos 67.5^\circ=\tfrac{1}{2}\sqrt{2-\sqrt{2}}\,</math> |
|||
:<math>\tan\frac{3\pi}{8}=\tan 67.5^\circ=\sqrt{2}+1\,</math> |
|||
:<math>\cot\frac{3\pi}{8}=\cot 67.5^\circ=\sqrt{2}-1\,</math> |
|||
===72°:36°的二倍=== |
|||
:<math>\sin\frac{2\pi}{5}=\sin 72^\circ=\tfrac{1}{4}\sqrt{2\left(5+\sqrt5\right)}\,</math> |
|||
:<math>\cos\frac{2\pi}{5}=\cos 72^\circ=\tfrac{1}{4}\left(\sqrt5-1\right)\,</math> |
|||
:<math>\tan\frac{2\pi}{5}=\tan 72^\circ=\sqrt{5+2\sqrt 5}\,</math> |
|||
:<math>\cot\frac{2\pi}{5}=\cot 72^\circ=\tfrac{1}{5}\sqrt{5\left(5-2\sqrt5\right)}\,</math> |
|||
=== 75°: 30°与45°的和 === |
|||
:<math>\sin\frac{5\pi}{12}=\sin 75^\circ=\tfrac{1}{4}\left(\sqrt6+\sqrt2\right)\,</math> |
|||
:<math>\cos\frac{5\pi}{12}=\cos 75^\circ=\tfrac{1}{4}\left(\sqrt6-\sqrt2\right)\,</math> |
|||
:<math>\tan\frac{5\pi}{12}=\tan 75^\circ=2+\sqrt3\,</math> |
|||
:<math>\cot\frac{5\pi}{12}=\cot 75^\circ=2-\sqrt3\,</math> |
|||
=== 81° === |
|||
:<math>\sin 81^\circ=\frac{1}{2}\sqrt{\frac{1}{2}\Big(4+\sqrt{2(5+\sqrt{5})}\Big)}</math> |
|||
=== 90°:根本 === |
|||
:<math>\sin \frac{\pi}{2}=\sin 90^\circ=1\,</math> |
|||
:<math>\cos \frac{\pi}{2}=\cos 90^\circ=0\,</math> |
|||
:<math>\cot \frac{\pi}{2}=\cot 90^\circ=0\,</math> |
|||
==列表== |
|||
在下表中,<math>i</math>為[[虛數單位]],<math>\omega=\exp(\frac{\pi i}{3})=-\frac{1}{2}+\frac{1}{2}i\sqrt{3}</math>。 |
|||
{|class="wikitable" |
|||
|<math>n</math> |
|||
|<math>\sin\left(\frac{2\pi}{n}\right)</math> |
|||
|<math>\cos\left(\frac{2\pi}{n}\right)</math> |
|||
|<math>\tan\left(\frac{2\pi}{n}\right)</math> |
|||
|- |
|||
|1 |
|||
|<math>0</math> |
|||
|<math>1</math> |
|||
|<math>0</math> |
|||
|- |
|||
|2 |
|||
|<math>0</math> |
|||
|<math>-1</math> |
|||
|<math>0</math> |
|||
|- |
|||
|3 |
|||
|<math>\frac{1}{2}\sqrt{3}</math> |
|||
|<math>-\frac{1}{2}</math> |
|||
|<math>-\sqrt{3}</math> |
|||
|- |
|||
|4 |
|||
|<math>1</math> |
|||
|<math>0</math> |
|||
|<math>\pm\infty</math> |
|||
|- |
|||
|5 |
|||
|<math>\frac{1}{4}\left(\sqrt{10+2\sqrt{5}}\right)</math> |
|||
|<math>\frac{1}{4}\left(\sqrt{5}-1\right)</math> |
|||
|<math>\sqrt{5+2\sqrt{5}}</math> |
|||
|- |
|||
|6 |
|||
|<math>\frac{1}{2}\sqrt{3}</math> |
|||
|<math>\frac{1}{2}</math> |
|||
|<math>\sqrt{3}</math> |
|||
|- |
|||
|7 |
|||
|<math>\frac{1}{2}\sqrt{\frac{1}{3}\left(7-\omega^2\sqrt[3]{\frac{7+21\sqrt{-3}}{2}}-\omega\sqrt[3]{\frac{7-21\sqrt{-3}}{2}}\right)}</math> |
|||
|<math>\frac{1}{6}\left(-1+\sqrt[3]{\frac{7+21\sqrt{-3}}{2}}+\sqrt[3]{\frac{7-21\sqrt{-3}}{2}}\right)</math> |
|||
| |
|||
|- |
|||
|8 |
|||
|<math>\frac{1}{2}\sqrt{2}</math> |
|||
|<math>\frac{1}{2}\sqrt{2}</math> |
|||
|<math>1</math> |
|||
|- |
|||
|9 |
|||
|<math>\frac{1}{4}\left(\sqrt[3]{4(-1+\sqrt{-3})}+\sqrt[3]{4(-1-\sqrt{-3})}\right)</math> |
|||
| |
|||
| |
|||
|- |
|||
|10 |
|||
|<math>\frac{1}{4}\left(\sqrt{10-2\sqrt{5}}\right)</math> |
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|<math>\frac{1}{4}\left(\sqrt{5}+1\right)</math> |
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|<math>\sqrt{5-2\sqrt{5}}</math> |
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|- |
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|11 |
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| |
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| |
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| |
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|- |
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|12 |
|||
|<math>\frac{1}{2}</math> |
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|<math>\frac{1}{2}\sqrt{3}</math> |
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|<math>\frac{1}{3}\sqrt{3}</math> |
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|- |
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|13 |
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| |
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| |
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| |
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|- |
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|14 |
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|<math>\frac{1}{24}\sqrt{3\left(112-\sqrt[3]{14336+\sqrt{-5549064193}}-\sqrt[3]{14336-\sqrt{-5549064193}}\right)} </math> |
|||
|<math>\frac{1}{24}\sqrt{3\left(80+\sqrt[3]{14336+\sqrt{-5549064193}}+\sqrt[3]{14336-\sqrt{-5549064193}}\right)} </math> |
|||
|<math>\sqrt{\frac{112-\sqrt[3]{14336+\sqrt{-5549064193}}-\sqrt[3]{14336-\sqrt{-5549064193}}}{80+\sqrt[3]{14336+\sqrt{-5549064193}}+\sqrt[3]{14336-\sqrt{-5549064193}}}}</math> |
|||
|- |
|||
|15 |
|||
|<math>\frac{1}{8}\left(\sqrt{15}+\sqrt{3}-\sqrt{10-2\sqrt{5}}\right)</math> |
|||
|<math>\frac{1}{8}\left(1+\sqrt{5}+\sqrt{30-6\sqrt{5}}\right)</math> |
|||
|<math>\frac{1}{2}\left(-3\sqrt{3}-\sqrt{15}+\sqrt{50+22\sqrt{5}}\right)</math> |
|||
|- |
|||
|16 |
|||
|<math>\frac{1}{2}\left(\sqrt{2-\sqrt{2}}\right)</math> |
|||
|<math>\frac{1}{2}\left(\sqrt{2+\sqrt{2}}\right)</math> |
|||
|<math>\sqrt{2}-1</math> |
|||
|- |
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|17 |
|||
|<math>\frac{1}{4}\sqrt{8-\sqrt{2\left(15+\sqrt{17}+\sqrt{34-2\sqrt{17}}-2\sqrt{17+3\sqrt{17}-\sqrt{170+38\sqrt{17}}}\right)}}</math> |
|||
|<math>\frac{1}{16}\left(-1+\sqrt{17}+\sqrt{34-2\sqrt{17}}+2\sqrt{17+3\sqrt{17}-\sqrt{34-2\sqrt{17}}-2\sqrt{34+2\sqrt{17}}}\right)</math> |
|||
| |
|||
|- |
|||
|18 |
|||
|<math>\frac{1}{4}\left(\sqrt[3]{4\sqrt{-1}-4\sqrt{3}}-\sqrt[3]{4\sqrt{-1}+4\sqrt{3}}\right)</math> |
|||
|<math>\frac{1}{4}\left(\sqrt[3]{4+4\sqrt{-3}}+\sqrt[3]{4-4\sqrt{-3}}\right)</math> |
|||
| |
|||
|- |
|||
|19 |
|||
| |
|||
| |
|||
| |
|||
|- |
|||
|20 |
|||
|<math>\frac{1}{4}\left(\sqrt{5}-1\right)</math> |
|||
|<math>\frac{1}{4}\left(\sqrt{10+2\sqrt{5}}\right)</math> |
|||
|<math>\frac{1}{5}\left(\sqrt{25-10\sqrt{5}}\right)</math> |
|||
|- |
|||
|21 |
|||
| |
|||
| |
|||
| |
|||
|- |
|||
|22 |
|||
| |
|||
| |
|||
| |
|||
|- |
|||
|23 |
|||
| |
|||
| |
|||
| |
|||
|- |
|||
|24 |
|||
|<math>\frac{1}{4}\left(\sqrt{6}-\sqrt{2}\right)</math> |
|||
|<math>\frac{1}{4}\left(\sqrt{6}+\sqrt{2}\right)</math> |
|||
|<math>2-\sqrt{3}</math> |
|||
|} |
|||
==相關== |
==相關== |
||
{{see|三角函數|三角恆等式}} |
{{see|三角函數|三角恆等式}} |
||
{{see| |
{{see|en:Generating trigonometric tables}} |
||
==參見== |
==參見== |
||
[[ |
*[[可作图多边形]] |
||
*{{tsl|en|Trigonometric_number|三角數}} |
|||
[[十七邊形]] |
*[[十七邊形]] |
||
==參考文獻== |
==參考文獻== |
||
* {{MathWorld|title=Constructible polygon|urlname=ConstructiblePolygon}} |
* {{MathWorld|title=Constructible polygon|urlname=ConstructiblePolygon}} |
||
* {{MathWorld|title=Trigonometry angles|urlname=TrigonometryAngles}} |
* {{MathWorld|title=Trigonometry angles|urlname=TrigonometryAngles}} |
||
** [http://mathworld.wolfram.com/TrigonometryAnglesPi3.html π/3 (60°)] |
** [http://mathworld.wolfram.com/TrigonometryAnglesPi3.html π/3 (60°)]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi3.html |date=20110212164640 }}—[http://mathworld.wolfram.com/TrigonometryAnglesPi6.html π/6 (30°)]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi6.html |date=20110522183409 }}—[http://mathworld.wolfram.com/TrigonometryAnglesPi12.html π/12 (15°)]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi12.html |date=20100717010251 }}—[http://mathworld.wolfram.com/TrigonometryAnglesPi24.html π/24 (7.5°)]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi24.html |date=20101024141647 }} |
||
** [http://mathworld.wolfram.com/TrigonometryAnglesPi4.html π/4 (45°)] |
** [http://mathworld.wolfram.com/TrigonometryAnglesPi4.html π/4 (45°)]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi4.html |date=20110522183132 }}—[http://mathworld.wolfram.com/TrigonometryAnglesPi8.html π/8 (22.5°)]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi8.html |date=20110522183536 }}—[http://mathworld.wolfram.com/TrigonometryAnglesPi16.html π/16 (11.25°)]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi16.html |date=20110521041823 }}—[http://mathworld.wolfram.com/TrigonometryAnglesPi32.html π/32 (5.625°)]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi32.html |date=20110522185037 }} |
||
** [http://mathworld.wolfram.com/TrigonometryAnglesPi5.html π/5 (36°)] |
** [http://mathworld.wolfram.com/TrigonometryAnglesPi5.html π/5 (36°)]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi5.html |date=20110522183141 }}—[http://mathworld.wolfram.com/TrigonometryAnglesPi10.html π/10 (18°)]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi10.html |date=20101031084302 }}—[http://mathworld.wolfram.com/TrigonometryAnglesPi20.html π/20 (9°)]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi20.html |date=20110522184929 }} |
||
** [http://mathworld.wolfram.com/TrigonometryAnglesPi7.html π/7] |
** [http://mathworld.wolfram.com/TrigonometryAnglesPi7.html π/7]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi7.html |date=20101119052456 }}—''π/14'' |
||
** [http://mathworld.wolfram.com/TrigonometryAnglesPi9.html π/9 (20°)] |
** [http://mathworld.wolfram.com/TrigonometryAnglesPi9.html π/9 (20°)]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi9.html |date=20110211115235 }}—[http://mathworld.wolfram.com/TrigonometryAnglesPi18.html π/18 (10°)]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi18.html |date=20110522184700 }} |
||
** [http://mathworld.wolfram.com/TrigonometryAnglesPi11.html π/11] |
** [http://mathworld.wolfram.com/TrigonometryAnglesPi11.html π/11]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi11.html |date=20110522184232 }} |
||
** [http://mathworld.wolfram.com/TrigonometryAnglesPi13.html π/13] |
** [http://mathworld.wolfram.com/TrigonometryAnglesPi13.html π/13]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi13.html |date=20110522184549 }} |
||
** [http://mathworld.wolfram.com/TrigonometryAnglesPi15.html π/15 (12°)] |
** [http://mathworld.wolfram.com/TrigonometryAnglesPi15.html π/15 (12°)]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi15.html |date=20101024141641 }}—[http://mathworld.wolfram.com/TrigonometryAnglesPi30.html π/30 (6°)]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi30.html |date=20101024141651 }} |
||
** [http://mathworld.wolfram.com/TrigonometryAnglesPi17.html π/17] |
** [http://mathworld.wolfram.com/TrigonometryAnglesPi17.html π/17]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi17.html |date=20101027111119 }} |
||
** ''π/19'' |
** ''π/19'' |
||
** [http://mathworld.wolfram.com/TrigonometryAnglesPi23.html π/23] |
** [http://mathworld.wolfram.com/TrigonometryAnglesPi23.html π/23]{{Wayback|url=http://mathworld.wolfram.com/TrigonometryAnglesPi23.html |date=20110522185320 }} |
||
* {{Cite journal |
* {{Cite journal |
||
|first1=Paul |
|first1=Paul |
||
第174行: | 第517行: | ||
|issue=1 |
|issue=1 |
||
|year=2002 |
|year=2002 |
||
|pages= |
|pages=42–53 |
||
|doi=10.1002/qua.1803 |
|doi=10.1002/qua.1803 |
||
}} |
}} |
||
第201行: | 第544行: | ||
|issue=3 |
|issue=3 |
||
|doi=10.1007/PL00009463 |
|doi=10.1007/PL00009463 |
||
|pages= |
|pages=321–332 |
||
}} {{MR|1706614}} |
}} {{MR|1706614}} |
||
* {{cite journal |
* {{cite journal |
||
第210行: | 第553行: | ||
|volume=81 |
|volume=81 |
||
|year=1997 |
|year=1997 |
||
|pages= |
|pages=387–398 |
||
}} {{MR|1472818}} |
}} {{MR|1472818}} |
||
* {{cite journal |
* {{cite journal |
||
第220行: | 第563行: | ||
|year=2006 |
|year=2006 |
||
|issue=256 |
|issue=256 |
||
|pages= |
|pages=2021–2035 |
||
|doi=10.1090/S0025-5718-06-01885-0 |
|doi=10.1090/S0025-5718-06-01885-0 |
||
|bibcode=2006MaCom..75.2021G |
|bibcode=2006MaCom..75.2021G |
||
第232行: | 第575行: | ||
|year=2003 |
|year=2003 |
||
|issue=4 |
|issue=4 |
||
|pages= |
|pages=326–330 |
||
|doi=10.2307/3647881 |
|doi=10.2307/3647881 |
||
}} {{MR|1984573}} {{JSTOR|3647881}} |
}} {{MR|1984573}} {{JSTOR|3647881}} |
||
==注释== |
|||
<references/> |
|||
{{三角函數}} |
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{{無理數導航}} |
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[[Category:三角學]] |
[[Category:三角學]] |
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[[Category:三角函数]] |
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[[ca:Constants trigonomètriques exactes]] |
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[[en:Exact trigonometric constants]] |
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[[eo:Akurataj trigonometriaj konstantoj]] |
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[[fr:Constante trigonométrique exacte]] |
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[[it:Costanti trigonometriche esatte]] |
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[[he:קבועים טריגונומטריים מדויקים]] |
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[[km:ចំនួនថេរត្រីកោណមាត្រពិត]] |
2024年5月31日 (五) 12:19的最新版本
三角学 |
---|
参考 |
定理 |
微积分 |
三角函數精確值是利用三角函數的公式將特定的三角函數值加以化簡,並以數學根式或分數表示。
用根式或分數表達的精確三角函數有時很有用,主要用於簡化的解決某些方程式能進一步化簡。
根据尼云定理,有理数度数的角的正弦值,其中的有理数仅有0,,±1。
角度單位 | 值 | |||||||
---|---|---|---|---|---|---|---|---|
轉 | ||||||||
角度 | ||||||||
弧度 | ||||||||
梯度 |
計算方式
[编辑]基於常識
[编辑]例如:0°、30°、45°
經由半角公式的計算
[编辑]例如:15°、22.5°
利用三倍角公式求角
[编辑]例如:10°、20°、7°......等等,非三的倍數的角的精確值。
把它改為
把當成未知數,當成常數項 解一元三次方程式即可求出
例如:
同樣地,若角度代未知數,則會得到三分之一角公式。
经由欧拉公式的计算
[编辑]例如:
經由和角公式的計算
[编辑]例如:21° = 9° + 12°
經由托勒密定理的計算
[编辑]例如:18°
根據托勒密定理,在圓內接四邊形ABCD中,
三角函数精确值列表
[编辑]由于三角函数的特性,大于45°角度的三角函数值,可以经由自0°~45°的角度的三角函数值的相关的计算取得。
0°:根本
[编辑]1°:2°的一半
[编辑]1.5°:正一百二十边形
[编辑]1.875°:正九十六边形
[编辑]2°:6°的三分之一
[编辑]2.25°:正八十边形
[编辑]2.8125°:正六十四边形
[编辑]3°:正六十边形
[编辑]3.75°:正四十八边形
[编辑]4°:12°的三分之一
[编辑]4.5°:正四十边形
[编辑]5°:15°的三分之一、正三十六边形
[编辑]5.625°:正三十二边形
[编辑]6°:正三十边形
[编辑]7.5°:正二十四边形
[编辑]9°:正二十边形
[编辑]10°:正十八边形
[编辑]11.25°:正十六边形
[编辑]12°:正十五边形
[编辑]15°:正十二边形
[编辑]18°:正十边形
[编辑]20°:正九边形、60°的三分之一
[编辑]21°:9°与12°的和
[编辑]360/17°,,:正十七边形
[编辑]22.5°:正八边形
[编辑]24°:12°的二倍
[编辑]180/7°,,:正七边形
[编辑]27°:12°与15°的和
[编辑]30°:正六边形
[编辑]33°:15°与18°的和
[编辑]36°:正五边形
[编辑]39°:18°与21°的和
[编辑]42°:21°的2倍
[编辑]45°:正方形
[编辑]48°
[编辑]54°:27°与27°的和
[编辑]60°:等边三角形
[编辑]67.5°:7.5°与60°的和
[编辑]72°:36°的二倍
[编辑]75°: 30°与45°的和
[编辑]81°
[编辑]90°:根本
[编辑]列表
[编辑]在下表中,為虛數單位,。
1 | |||
2 | |||
3 | |||
4 | |||
5 | |||
6 | |||
7 | |||
8 | |||
9 | |||
10 | |||
11 | |||
12 | |||
13 | |||
14 | |||
15 | |||
16 | |||
17 | |||
18 | |||
19 | |||
20 | |||
21 | |||
22 | |||
23 | |||
24 |
相關
[编辑]參見
[编辑]參考文獻
[编辑]- 埃里克·韦斯坦因. Constructible polygon. MathWorld.
- 埃里克·韦斯坦因. Trigonometry angles. MathWorld.
- π/3 (60°)(页面存档备份,存于互联网档案馆)—π/6 (30°)(页面存档备份,存于互联网档案馆)—π/12 (15°)(页面存档备份,存于互联网档案馆)—π/24 (7.5°)(页面存档备份,存于互联网档案馆)
- π/4 (45°)(页面存档备份,存于互联网档案馆)—π/8 (22.5°)(页面存档备份,存于互联网档案馆)—π/16 (11.25°)(页面存档备份,存于互联网档案馆)—π/32 (5.625°)(页面存档备份,存于互联网档案馆)
- π/5 (36°)(页面存档备份,存于互联网档案馆)—π/10 (18°)(页面存档备份,存于互联网档案馆)—π/20 (9°)(页面存档备份,存于互联网档案馆)
- π/7(页面存档备份,存于互联网档案馆)—π/14
- π/9 (20°)(页面存档备份,存于互联网档案馆)—π/18 (10°)(页面存档备份,存于互联网档案馆)
- π/11(页面存档备份,存于互联网档案馆)
- π/13(页面存档备份,存于互联网档案馆)
- π/15 (12°)(页面存档备份,存于互联网档案馆)—π/30 (6°)(页面存档备份,存于互联网档案馆)
- π/17(页面存档备份,存于互联网档案馆)
- π/19
- π/23(页面存档备份,存于互联网档案馆)
- Bracken, Paul; Cizek, Jiri. Evaluation of quantum mechanical perturbation sums in terms of quadratic surds and their use in approximation of zeta(3)/pi^3. Int. J. Quantum Chemistry. 2002, 90 (1): 42–53. doi:10.1002/qua.1803.
- Conway, John H.; Radin, Charles; Radun, Lorenzo. On angles whose squared trigonometric functions are rational. 1998. arXiv:math-ph/9812019 .
- Conway, John H.; Radin, Charles; Radun, Lorenzo. On angles whose squared trigonometric functions are rational. Disc. Comput. Geom. 1999, 22 (3): 321–332. doi:10.1007/PL00009463. MR1706614
- Girstmair, Kurt. Some linear relations between values of trigonometric functions at k*pi/n. Acta Arithmetica. 1997, 81: 387–398. MR1472818
- Gurak, S. On the minimal polynomial of gauss periods for prime powers. Mathematics of Computation. 2006, 75 (256): 2021–2035. Bibcode:2006MaCom..75.2021G. doi:10.1090/S0025-5718-06-01885-0. MR2240647
- Servi, L. D. Nested square roots of 2. Am. Math. Monthly. 2003, 110 (4): 326–330. doi:10.2307/3647881. MR1984573
注释
[编辑]- ^ 由Wolfram Alpha验算:[1] (页面存档备份,存于互联网档案馆)
- ^ 使用Mathematica驗算,代碼為N[ArcSin[(1 + Sqrt[3] I)/16 Power[4 Sqrt[30] - 8 Sqrt[15 + 3 Sqrt[5]] + 8 Sqrt[5 + Sqrt[5]] + 4 Sqrt[10] - 4 Sqrt[6] - 4 Sqrt[2] + (4 Sqrt[30] + 8 Sqrt[15 + 3 Sqrt[5]] + 8 Sqrt[5 + Sqrt[5]] - 4 Sqrt[10] - 4 Sqrt[6] + 4 Sqrt[2]) I, (3)^-1] + (1 - Sqrt[3] I)/16 Power[4 Sqrt[30] - 8 Sqrt[15 + 3 Sqrt[5]] + 8 Sqrt[5 + Sqrt[5]] + 4 Sqrt[10] - 4 Sqrt[6] - 4 Sqrt[2] - (4 Sqrt[30] + 8 Sqrt[15 + 3 Sqrt[5]] + 8 Sqrt[5 + Sqrt[5]] - 4 Sqrt[10] - 4 Sqrt[6] + 4 Sqrt[2]) I, (3)^-1]], 100]/Degree結果為1與原角度無誤差