* ************************************************************************ * SUBROUTINE DLAMC5( BETA, P, EMIN, IEEE, EMAX, RMAX ) * * -- LAPACK auxiliary routine (version 2.0) -- * Univ. of Tennessee, Univ. of California Berkeley, NAG Ltd., * Courant Institute, Argonne National Lab, and Rice University * October 31, 1992 * * .. Scalar Arguments .. LOGICAL IEEE INTEGER BETA, EMAX, EMIN, P DOUBLE PRECISION RMAX * .. * * Purpose * ======= * * DLAMC5 attempts to compute RMAX, the largest machine floating-point * number, without overflow. It assumes that EMAX + abs(EMIN) sum * approximately to a power of 2. It will fail on machines where this * assumption does not hold, for example, the Cyber 205 (EMIN = -28625, * EMAX = 28718). It will also fail if the value supplied for EMIN is * too large (i.e. too close to zero), probably with overflow. * * Arguments * ========= * * BETA (input) INTEGER * The base of floating-point arithmetic. * * P (input) INTEGER * The number of base BETA digits in the mantissa of a * floating-point value. * * EMIN (input) INTEGER * The minimum exponent before (gradual) underflow. * * IEEE (input) LOGICAL * A logical flag specifying whether or not the arithmetic * system is thought to comply with the IEEE standard. * * EMAX (output) INTEGER * The largest exponent before overflow * * RMAX (output) DOUBLE PRECISION * The largest machine floating-point number. * * ===================================================================== * * .. Parameters .. DOUBLE PRECISION ZERO, ONE PARAMETER ( ZERO = 0.0D0, ONE = 1.0D0 ) * .. * .. Local Scalars .. INTEGER EXBITS, EXPSUM, I, LEXP, NBITS, TRY, UEXP DOUBLE PRECISION OLDY, RECBAS, Y, Z * .. * .. External Functions .. DOUBLE PRECISION DLAMC3 EXTERNAL DLAMC3 * .. * .. Intrinsic Functions .. INTRINSIC MOD * .. * .. Executable Statements .. * * First compute LEXP and UEXP, two powers of 2 that bound * abs(EMIN). We then assume that EMAX + abs(EMIN) will sum * approximately to the bound that is closest to abs(EMIN). * (EMAX is the exponent of the required number RMAX). * LEXP = 1 EXBITS = 1 10 CONTINUE TRY = LEXP*2 IF( TRY.LE.( -EMIN ) ) THEN LEXP = TRY EXBITS = EXBITS + 1 GO TO 10 END IF IF( LEXP.EQ.-EMIN ) THEN UEXP = LEXP ELSE UEXP = TRY EXBITS = EXBITS + 1 END IF * * Now -LEXP is less than or equal to EMIN, and -UEXP is greater * than or equal to EMIN. EXBITS is the number of bits needed to * store the exponent. * IF( ( UEXP+EMIN ).GT.( -LEXP-EMIN ) ) THEN EXPSUM = 2*LEXP ELSE EXPSUM = 2*UEXP END IF * * EXPSUM is the exponent range, approximately equal to * EMAX - EMIN + 1 . * EMAX = EXPSUM + EMIN - 1 NBITS = 1 + EXBITS + P * * NBITS is the total number of bits needed to store a * floating-point number. * IF( ( MOD( NBITS, 2 ).EQ.1 ) .AND. ( BETA.EQ.2 ) ) THEN * * Either there are an odd number of bits used to store a * floating-point number, which is unlikely, or some bits are * not used in the representation of numbers, which is possible, * (e.g. Cray machines) or the mantissa has an implicit bit, * (e.g. IEEE machines, Dec Vax machines), which is perhaps the * most likely. We have to assume the last alternative. * If this is true, then we need to reduce EMAX by one because * there must be some way of representing zero in an implicit-bit * system. On machines like Cray, we are reducing EMAX by one * unnecessarily. * EMAX = EMAX - 1 END IF * IF( IEEE ) THEN * * Assume we are on an IEEE machine which reserves one exponent * for infinity and NaN. * EMAX = EMAX - 1 END IF * * Now create RMAX, the largest machine number, which should * be equal to (1.0 - BETA**(-P)) * BETA**EMAX . * * First compute 1.0 - BETA**(-P), being careful that the * result is less than 1.0 . * RECBAS = ONE / BETA Z = BETA - ONE Y = ZERO DO 20 I = 1, P Z = Z*RECBAS IF( Y.LT.ONE ) $ OLDY = Y Y = DLAMC3( Y, Z ) 20 CONTINUE IF( Y.GE.ONE ) $ Y = OLDY * * Now multiply by BETA**EMAX to get RMAX. * DO 30 I = 1, EMAX Y = DLAMC3( Y*BETA, ZERO ) 30 CONTINUE * RMAX = Y RETURN * * End of DLAMC5 * END