fAdd
fAdd(fSquared_Sigma_DC, fSquared_Sigma_CR))))));
fA_Term = fAdd(fMultiply(fSM_A4, fAdd(fSclk, fSclk_margin)), fSM_A5);
fB_Term = fAdd(fMultiply(fSM_A2, fAdd(fSclk, fSclk_margin)), fSM_A6);
fC_Term = fAdd(fRO_DC_margin,
fAdd(fMultiply(fSM_A0, fLkg_FT),
fAdd(fMultiply(fMultiply(fSM_A1, fLkg_FT),
fAdd(fSclk, fSclk_margin)),
fAdd(fMultiply(fSM_A3,
fAdd(fSclk, fSclk_margin)),
while (GreaterThan(fAdd(fV_max, fStepSize), fV_x)) {
fTDP_Power_left = fMultiply(fMultiply(fMultiply(fAdd(
fMultiply(fExponential(fMultiply(fAdd(fMultiply(fKv_m_fused,
fAdd(fMultiply(fKv_m_fused, fT_prod), fKv_b_fused), fV_FT)));
fTDP_Power = fAdd(fTDP_Power_left, fTDP_Power_right);
fV_NL = fAdd(fV_x, fDivide(fMultiply(fTDP_Current, fRLL_LoadLine),
fV_x = fAdd(fV_x, fStepSize);
fA_Term = fAdd(fMargin_RO_a, fAdd(fMultiply(fSM_A4, fSclk), fSM_A5));
fB_Term = fAdd(fAdd(fMultiply(fSM_A2, fSclk), fSM_A6), fMargin_RO_b);
fC_Term = fAdd(fMargin_RO_c,
fAdd(fMultiply(fSM_A0, fLkg_FT),
fAdd(fMultiply(fSM_A1, fMultiply(fLkg_FT, fSclk)),
fAdd(fMultiply(fSM_A3, fSclk),
fVDDC_base = fDivide(fVDDC_base, fAdd(fMultiply(fSM_A0, fSclk), fSM_A2));
fRO_DC_margin = fAdd(fMultiply(fMargin_RO_a,
fAdd(fMultiply(fMargin_RO_b, repeat),
fDC_SCLK = fDivide(fDC_SCLK, fAdd(fMultiply(fSM_A0, repeat), fSM_A1));
fSclk_margin = fAdd(fMicro_FMAX,
fAdd(fMicro_CR,
fAdd(fMargin_fixed,
fSqrt(fAdd(fSquared_Sigma_FMAX,
error_term = fAdd(fPositiveOne, exponent);
while (GreaterThan(fAdd(value, fNegativeOne), upper_bound)) {
solution = fAdd(solution, GetScaledFraction(logk_array[i], 10000));
error_term = fAdd(fNegativeOne, value);
return (fAdd(solution, error_term));
f_decoded_value = fAdd(f_decoded_value, f_min);
f_decoded_value = fAdd(f_decoded_value, f_average);
fullNumber = fAdd(scaledDecimal,scaledReal);
root_second = fAdd(fNegate(B), temp); /* b + Sqrt(b^2 - 4AC) */
solution = fAdd(solution, fStepSize);
static fInt fAdd (fInt, fInt); /* Returns the sum of two fInt numbers */