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    /* ===-- muldc3.c - Implement __muldc3 -------------------------------------===  | 
    
    
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     *                     The LLVM Compiler Infrastructure  | 
    
    
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     *  | 
    
    
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     * This file is dual licensed under the MIT and the University of Illinois Open  | 
    
    
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     * Source Licenses. See LICENSE.TXT for details.  | 
    
    
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     *  | 
    
    
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     * ===----------------------------------------------------------------------===  | 
    
    
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     * This file implements __muldc3 for the compiler_rt library.  | 
    
    
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     *  | 
    
    
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     * ===----------------------------------------------------------------------===  | 
    
    
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     */  | 
    
    
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    #include "int_lib.h"  | 
    
    
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    #include "int_math.h"  | 
    
    
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    /* Returns: the product of a + ib and c + id */  | 
    
    
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    COMPILER_RT_ABI Dcomplex  | 
    
    
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    __muldc3(double __a, double __b, double __c, double __d)  | 
    
    
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    { | 
    
    
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        double __ac = __a * __c;  | 
    
    
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        double __bd = __b * __d;  | 
    
    
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        double __ad = __a * __d;  | 
    
    
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        double __bc = __b * __c;  | 
    
    
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        Dcomplex z;  | 
    
    
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        COMPLEX_REAL(z) = __ac - __bd;  | 
    
    
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        COMPLEX_IMAGINARY(z) = __ad + __bc;  | 
    
    
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        if (crt_isnan(COMPLEX_REAL(z)) && crt_isnan(COMPLEX_IMAGINARY(z)))  | 
    
    
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        { | 
    
    
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            int __recalc = 0;  | 
    
    
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            if (crt_isinf(__a) || crt_isinf(__b))  | 
    
    
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            { | 
    
    
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                __a = crt_copysign(crt_isinf(__a) ? 1 : 0, __a);  | 
    
    
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                __b = crt_copysign(crt_isinf(__b) ? 1 : 0, __b);  | 
    
    
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                if (crt_isnan(__c))  | 
    
    
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                    __c = crt_copysign(0, __c);  | 
    
    
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                if (crt_isnan(__d))  | 
    
    
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                    __d = crt_copysign(0, __d);  | 
    
    
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                __recalc = 1;  | 
    
    
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            }  | 
    
    
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            if (crt_isinf(__c) || crt_isinf(__d))  | 
    
    
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            { | 
    
    
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                __c = crt_copysign(crt_isinf(__c) ? 1 : 0, __c);  | 
    
    
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                __d = crt_copysign(crt_isinf(__d) ? 1 : 0, __d);  | 
    
    
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                if (crt_isnan(__a))  | 
    
    
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                    __a = crt_copysign(0, __a);  | 
    
    
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                if (crt_isnan(__b))  | 
    
    
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                    __b = crt_copysign(0, __b);  | 
    
    
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                __recalc = 1;  | 
    
    
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            }  | 
    
    
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            if (!__recalc && (crt_isinf(__ac) || crt_isinf(__bd) ||  | 
    
    
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                              crt_isinf(__ad) || crt_isinf(__bc)))  | 
    
    
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            { | 
    
    
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                if (crt_isnan(__a))  | 
    
    
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                    __a = crt_copysign(0, __a);  | 
    
    
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                if (crt_isnan(__b))  | 
    
    
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                    __b = crt_copysign(0, __b);  | 
    
    
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                if (crt_isnan(__c))  | 
    
    
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                    __c = crt_copysign(0, __c);  | 
    
    
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                if (crt_isnan(__d))  | 
    
    
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                    __d = crt_copysign(0, __d);  | 
    
    
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                __recalc = 1;  | 
    
    
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            }  | 
    
    
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            if (__recalc)  | 
    
    
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            { | 
    
    
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                COMPLEX_REAL(z) = CRT_INFINITY * (__a * __c - __b * __d);  | 
    
    
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                COMPLEX_IMAGINARY(z) = CRT_INFINITY * (__a * __d + __b * __c);  | 
    
    
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            }  | 
    
    
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        }  | 
    
    
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        return z;  | 
    
    
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    }  |