Average Error: 23.1 → 6.0
Time: 6.6m
Precision: 64
Internal Precision: 1344
\[\frac{\frac{\frac{\left(\alpha + \beta\right) \cdot \left(\beta - \alpha\right)}{\left(\alpha + \beta\right) + 2 \cdot i}}{\left(\left(\alpha + \beta\right) + 2 \cdot i\right) + 2.0} + 1.0}{2.0}\]
\[\begin{array}{l} \mathbf{if}\;\frac{\sqrt[3]{{\left(\frac{\frac{\alpha + \beta}{\sqrt[3]{\sqrt{\beta + \left(\left(2.0 + \alpha\right) + i \cdot 2\right)}} \cdot \sqrt[3]{\sqrt{\beta + \left(\left(2.0 + \alpha\right) + i \cdot 2\right)}}}}{\sqrt{\sqrt{\beta + \left(\left(2.0 + \alpha\right) + i \cdot 2\right)}}} \cdot \frac{\frac{\frac{\beta - \alpha}{i \cdot 2 + \left(\alpha + \beta\right)}}{\sqrt[3]{\sqrt{\beta + \left(\left(2.0 + \alpha\right) + i \cdot 2\right)}}}}{\sqrt{\sqrt{\beta + \left(\left(2.0 + \alpha\right) + i \cdot 2\right)}}} + 1.0\right)}^{3}}}{2.0} \le 9.417813751078084 \cdot 10^{-14}:\\ \;\;\;\;\frac{\frac{2.0}{\alpha} + \frac{\frac{8.0}{\alpha} - 4.0}{\alpha \cdot \alpha}}{2.0}\\ \mathbf{else}:\\ \;\;\;\;\frac{\frac{\beta + \alpha}{\sqrt{\alpha + \left(i \cdot 2 + \left(\beta + 2.0\right)\right)}} \cdot \frac{\frac{\beta - \alpha}{\left(\alpha + \beta\right) + 2 \cdot i}}{\sqrt{\left(\left(\alpha + \beta\right) + 2 \cdot i\right) + 2.0}} + 1.0}{2.0}\\ \end{array}\]

Error

Bits error versus alpha

Bits error versus beta

Bits error versus i

Try it out

Your Program's Arguments

Results

Enter valid numbers for all inputs

Derivation

  1. Split input into 2 regimes
  2. if (/ (cbrt (pow (+ (* (/ (/ (+ alpha beta) (* (cbrt (sqrt (+ beta (+ (+ 2.0 alpha) (* i 2))))) (cbrt (sqrt (+ beta (+ (+ 2.0 alpha) (* i 2))))))) (sqrt (sqrt (+ beta (+ (+ 2.0 alpha) (* i 2)))))) (/ (/ (/ (- beta alpha) (+ (* i 2) (+ alpha beta))) (cbrt (sqrt (+ beta (+ (+ 2.0 alpha) (* i 2)))))) (sqrt (sqrt (+ beta (+ (+ 2.0 alpha) (* i 2))))))) 1.0) 3)) 2.0) < 9.417813751078084e-14

    1. Initial program 62.5

      \[\frac{\frac{\frac{\left(\alpha + \beta\right) \cdot \left(\beta - \alpha\right)}{\left(\alpha + \beta\right) + 2 \cdot i}}{\left(\left(\alpha + \beta\right) + 2 \cdot i\right) + 2.0} + 1.0}{2.0}\]
    2. Taylor expanded around inf 29.6

      \[\leadsto \frac{\color{blue}{\left(8.0 \cdot \frac{1}{{\alpha}^{3}} + 2.0 \cdot \frac{1}{\alpha}\right) - 4.0 \cdot \frac{1}{{\alpha}^{2}}}}{2.0}\]
    3. Applied simplify29.6

      \[\leadsto \color{blue}{\frac{\frac{2.0}{\alpha} + \frac{\frac{8.0}{\alpha} - 4.0}{\alpha \cdot \alpha}}{2.0}}\]

    if 9.417813751078084e-14 < (/ (cbrt (pow (+ (* (/ (/ (+ alpha beta) (* (cbrt (sqrt (+ beta (+ (+ 2.0 alpha) (* i 2))))) (cbrt (sqrt (+ beta (+ (+ 2.0 alpha) (* i 2))))))) (sqrt (sqrt (+ beta (+ (+ 2.0 alpha) (* i 2)))))) (/ (/ (/ (- beta alpha) (+ (* i 2) (+ alpha beta))) (cbrt (sqrt (+ beta (+ (+ 2.0 alpha) (* i 2)))))) (sqrt (sqrt (+ beta (+ (+ 2.0 alpha) (* i 2))))))) 1.0) 3)) 2.0)

    1. Initial program 13.7

      \[\frac{\frac{\frac{\left(\alpha + \beta\right) \cdot \left(\beta - \alpha\right)}{\left(\alpha + \beta\right) + 2 \cdot i}}{\left(\left(\alpha + \beta\right) + 2 \cdot i\right) + 2.0} + 1.0}{2.0}\]
    2. Using strategy rm
    3. Applied add-sqr-sqrt13.7

      \[\leadsto \frac{\frac{\frac{\left(\alpha + \beta\right) \cdot \left(\beta - \alpha\right)}{\left(\alpha + \beta\right) + 2 \cdot i}}{\color{blue}{\sqrt{\left(\left(\alpha + \beta\right) + 2 \cdot i\right) + 2.0} \cdot \sqrt{\left(\left(\alpha + \beta\right) + 2 \cdot i\right) + 2.0}}} + 1.0}{2.0}\]
    4. Applied *-un-lft-identity13.7

      \[\leadsto \frac{\frac{\frac{\left(\alpha + \beta\right) \cdot \left(\beta - \alpha\right)}{\color{blue}{1 \cdot \left(\left(\alpha + \beta\right) + 2 \cdot i\right)}}}{\sqrt{\left(\left(\alpha + \beta\right) + 2 \cdot i\right) + 2.0} \cdot \sqrt{\left(\left(\alpha + \beta\right) + 2 \cdot i\right) + 2.0}} + 1.0}{2.0}\]
    5. Applied times-frac0.4

      \[\leadsto \frac{\frac{\color{blue}{\frac{\alpha + \beta}{1} \cdot \frac{\beta - \alpha}{\left(\alpha + \beta\right) + 2 \cdot i}}}{\sqrt{\left(\left(\alpha + \beta\right) + 2 \cdot i\right) + 2.0} \cdot \sqrt{\left(\left(\alpha + \beta\right) + 2 \cdot i\right) + 2.0}} + 1.0}{2.0}\]
    6. Applied times-frac0.4

      \[\leadsto \frac{\color{blue}{\frac{\frac{\alpha + \beta}{1}}{\sqrt{\left(\left(\alpha + \beta\right) + 2 \cdot i\right) + 2.0}} \cdot \frac{\frac{\beta - \alpha}{\left(\alpha + \beta\right) + 2 \cdot i}}{\sqrt{\left(\left(\alpha + \beta\right) + 2 \cdot i\right) + 2.0}}} + 1.0}{2.0}\]
    7. Applied simplify0.4

      \[\leadsto \frac{\color{blue}{\frac{\beta + \alpha}{\sqrt{\alpha + \left(i \cdot 2 + \left(\beta + 2.0\right)\right)}}} \cdot \frac{\frac{\beta - \alpha}{\left(\alpha + \beta\right) + 2 \cdot i}}{\sqrt{\left(\left(\alpha + \beta\right) + 2 \cdot i\right) + 2.0}} + 1.0}{2.0}\]
  3. Recombined 2 regimes into one program.

Runtime

Time bar (total: 6.6m)Debug logProfile

herbie shell --seed 2018199 
(FPCore (alpha beta i)
  :name "Octave 3.8, jcobi/2"
  :pre (and (> alpha -1) (> beta -1) (> i 0))
  (/ (+ (/ (/ (* (+ alpha beta) (- beta alpha)) (+ (+ alpha beta) (* 2 i))) (+ (+ (+ alpha beta) (* 2 i)) 2.0)) 1.0) 2.0))