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SUBROUTINE ZGEMM ( TRANSA, TRANSB, M, N, K, ALPHA, A, LDA, B, LDB,$ BETA, C, LDC )* .. Scalar Arguments ..CHARACTER*1 TRANSA, TRANSBINTEGER M, N, K, LDA, LDB, LDCCOMPLEX*16 ALPHA, BETA* .. Array Arguments ..COMPLEX*16 A( LDA, * ), B( LDB, * ), C( LDC, * )* ..** Purpose* =======** ZGEMM performs one of the matrix-matrix operations** C := alpha*op( A )*op( B ) + beta*C,** where op( X ) is one of** op( X ) = X or op( X ) = X' or op( X ) = conjg( X' ),** alpha and beta are scalars, and A, B and C are matrices, with op( A )* an m by k matrix, op( B ) a k by n matrix and C an m by n matrix.** Parameters* ==========** TRANSA - CHARACTER*1.* On entry, TRANSA specifies the form of op( A ) to be used in* the matrix multiplication as follows:** TRANSA = 'N' or 'n', op( A ) = A.** TRANSA = 'T' or 't', op( A ) = A'.** TRANSA = 'C' or 'c', op( A ) = conjg( A' ).** Unchanged on exit.** TRANSB - CHARACTER*1.* On entry, TRANSB specifies the form of op( B ) to be used in* the matrix multiplication as follows:** TRANSB = 'N' or 'n', op( B ) = B.** TRANSB = 'T' or 't', op( B ) = B'.** TRANSB = 'C' or 'c', op( B ) = conjg( B' ).** Unchanged on exit.** M - INTEGER.* On entry, M specifies the number of rows of the matrix* op( A ) and of the matrix C. M must be at least zero.* Unchanged on exit.** N - INTEGER.* On entry, N specifies the number of columns of the matrix* op( B ) and the number of columns of the matrix C. N must be* at least zero.* Unchanged on exit.** K - INTEGER.* On entry, K specifies the number of columns of the matrix* op( A ) and the number of rows of the matrix op( B ). K must* be at least zero.* Unchanged on exit.** ALPHA - COMPLEX*16 .* On entry, ALPHA specifies the scalar alpha.* Unchanged on exit.** A - COMPLEX*16 array of DIMENSION ( LDA, ka ), where ka is* k when TRANSA = 'N' or 'n', and is m otherwise.* Before entry with TRANSA = 'N' or 'n', the leading m by k* part of the array A must contain the matrix A, otherwise* the leading k by m part of the array A must contain the* matrix A.* Unchanged on exit.** LDA - INTEGER.* On entry, LDA specifies the first dimension of A as declared* in the calling (sub) program. When TRANSA = 'N' or 'n' then* LDA must be at least max( 1, m ), otherwise LDA must be at* least max( 1, k ).* Unchanged on exit.** B - COMPLEX*16 array of DIMENSION ( LDB, kb ), where kb is* n when TRANSB = 'N' or 'n', and is k otherwise.* Before entry with TRANSB = 'N' or 'n', the leading k by n* part of the array B must contain the matrix B, otherwise* the leading n by k part of the array B must contain the* matrix B.* Unchanged on exit.** LDB - INTEGER.* On entry, LDB specifies the first dimension of B as declared* in the calling (sub) program. When TRANSB = 'N' or 'n' then* LDB must be at least max( 1, k ), otherwise LDB must be at* least max( 1, n ).* Unchanged on exit.** BETA - COMPLEX*16 .* On entry, BETA specifies the scalar beta. When BETA is* supplied as zero then C need not be set on input.* Unchanged on exit.** C - COMPLEX*16 array of DIMENSION ( LDC, n ).* Before entry, the leading m by n part of the array C must* contain the matrix C, except when beta is zero, in which* case C need not be set on entry.* On exit, the array C is overwritten by the m by n matrix* ( alpha*op( A )*op( B ) + beta*C ).** LDC - INTEGER.* On entry, LDC specifies the first dimension of C as declared* in the calling (sub) program. LDC must be at least* max( 1, m ).* Unchanged on exit.*** Level 3 Blas routine.** -- Written on 8-February-1989.* Jack Dongarra, Argonne National Laboratory.* Iain Duff, AERE Harwell.* Jeremy Du Croz, Numerical Algorithms Group Ltd.* Sven Hammarling, Numerical Algorithms Group Ltd.*** .. External Functions ..LOGICAL LSAMEEXTERNAL LSAME* .. External Subroutines ..EXTERNAL XERBLA* .. Intrinsic Functions ..INTRINSIC DCONJG, MAX* .. Local Scalars ..LOGICAL CONJA, CONJB, NOTA, NOTBINTEGER I, INFO, J, L, NCOLA, NROWA, NROWBCOMPLEX*16 TEMP* .. Parameters ..COMPLEX*16 ONEPARAMETER ( ONE = ( 1.0D+0, 0.0D+0 ) )COMPLEX*16 ZEROPARAMETER ( ZERO = ( 0.0D+0, 0.0D+0 ) )* ..* .. Executable Statements ..** Set NOTA and NOTB as true if A and B respectively are not* conjugated or transposed, set CONJA and CONJB as true if A and* B respectively are to be transposed but not conjugated and set* NROWA, NCOLA and NROWB as the number of rows and columns of A* and the number of rows of B respectively.*NOTA = LSAME( TRANSA, 'N' )NOTB = LSAME( TRANSB, 'N' )CONJA = LSAME( TRANSA, 'C' )CONJB = LSAME( TRANSB, 'C' )IF( NOTA )THENNROWA = MNCOLA = KELSENROWA = KNCOLA = MEND IFIF( NOTB )THENNROWB = KELSENROWB = NEND IF** Test the input parameters.*INFO = 0IF( ( .NOT.NOTA ).AND.$ ( .NOT.CONJA ).AND.$ ( .NOT.LSAME( TRANSA, 'T' ) ) )THENINFO = 1ELSE IF( ( .NOT.NOTB ).AND.$ ( .NOT.CONJB ).AND.$ ( .NOT.LSAME( TRANSB, 'T' ) ) )THENINFO = 2ELSE IF( M .LT.0 )THENINFO = 3ELSE IF( N .LT.0 )THENINFO = 4ELSE IF( K .LT.0 )THENINFO = 5ELSE IF( LDA.LT.MAX( 1, NROWA ) )THENINFO = 8ELSE IF( LDB.LT.MAX( 1, NROWB ) )THENINFO = 10ELSE IF( LDC.LT.MAX( 1, M ) )THENINFO = 13END IFIF( INFO.NE.0 )THENCALL XERBLA( 'ZGEMM ', INFO )RETURNEND IF** Quick return if possible.*IF( ( M.EQ.0 ).OR.( N.EQ.0 ).OR.$ ( ( ( ALPHA.EQ.ZERO ).OR.( K.EQ.0 ) ).AND.( BETA.EQ.ONE ) ) )$ RETURN** And when alpha.eq.zero.*IF( ALPHA.EQ.ZERO )THENIF( BETA.EQ.ZERO )THENDO 20, J = 1, NDO 10, I = 1, MC( I, J ) = ZERO10 CONTINUE20 CONTINUEELSEDO 40, J = 1, NDO 30, I = 1, MC( I, J ) = BETA*C( I, J )30 CONTINUE40 CONTINUEEND IFRETURNEND IF** Start the operations.*IF( NOTB )THENIF( NOTA )THEN** Form C := alpha*A*B + beta*C.*DO 90, J = 1, NIF( BETA.EQ.ZERO )THENDO 50, I = 1, MC( I, J ) = ZERO50 CONTINUEELSE IF( BETA.NE.ONE )THENDO 60, I = 1, MC( I, J ) = BETA*C( I, J )60 CONTINUEEND IFDO 80, L = 1, KIF( B( L, J ).NE.ZERO )THENTEMP = ALPHA*B( L, J )DO 70, I = 1, MC( I, J ) = C( I, J ) + TEMP*A( I, L )70 CONTINUEEND IF80 CONTINUE90 CONTINUEELSE IF( CONJA )THEN** Form C := alpha*conjg( A' )*B + beta*C.*DO 120, J = 1, NDO 110, I = 1, MTEMP = ZERODO 100, L = 1, KTEMP = TEMP + DCONJG( A( L, I ) )*B( L, J )100 CONTINUEIF( BETA.EQ.ZERO )THENC( I, J ) = ALPHA*TEMPELSEC( I, J ) = ALPHA*TEMP + BETA*C( I, J )END IF110 CONTINUE120 CONTINUEELSE** Form C := alpha*A'*B + beta*C*DO 150, J = 1, NDO 140, I = 1, MTEMP = ZERODO 130, L = 1, KTEMP = TEMP + A( L, I )*B( L, J )130 CONTINUEIF( BETA.EQ.ZERO )THENC( I, J ) = ALPHA*TEMPELSEC( I, J ) = ALPHA*TEMP + BETA*C( I, J )END IF140 CONTINUE150 CONTINUEEND IFELSE IF( NOTA )THENIF( CONJB )THEN** Form C := alpha*A*conjg( B' ) + beta*C.*DO 200, J = 1, NIF( BETA.EQ.ZERO )THENDO 160, I = 1, MC( I, J ) = ZERO160 CONTINUEELSE IF( BETA.NE.ONE )THENDO 170, I = 1, MC( I, J ) = BETA*C( I, J )170 CONTINUEEND IFDO 190, L = 1, KIF( B( J, L ).NE.ZERO )THENTEMP = ALPHA*DCONJG( B( J, L ) )DO 180, I = 1, MC( I, J ) = C( I, J ) + TEMP*A( I, L )180 CONTINUEEND IF190 CONTINUE200 CONTINUEELSE** Form C := alpha*A*B' + beta*C*DO 250, J = 1, NIF( BETA.EQ.ZERO )THENDO 210, I = 1, MC( I, J ) = ZERO210 CONTINUEELSE IF( BETA.NE.ONE )THENDO 220, I = 1, MC( I, J ) = BETA*C( I, J )220 CONTINUEEND IFDO 240, L = 1, KIF( B( J, L ).NE.ZERO )THENTEMP = ALPHA*B( J, L )DO 230, I = 1, MC( I, J ) = C( I, J ) + TEMP*A( I, L )230 CONTINUEEND IF240 CONTINUE250 CONTINUEEND IFELSE IF( CONJA )THENIF( CONJB )THEN** Form C := alpha*conjg( A' )*conjg( B' ) + beta*C.*DO 280, J = 1, NDO 270, I = 1, MTEMP = ZERODO 260, L = 1, KTEMP = TEMP +$ DCONJG( A( L, I ) )*DCONJG( B( J, L ) )260 CONTINUEIF( BETA.EQ.ZERO )THENC( I, J ) = ALPHA*TEMPELSEC( I, J ) = ALPHA*TEMP + BETA*C( I, J )END IF270 CONTINUE280 CONTINUEELSE** Form C := alpha*conjg( A' )*B' + beta*C*DO 310, J = 1, NDO 300, I = 1, MTEMP = ZERODO 290, L = 1, KTEMP = TEMP + DCONJG( A( L, I ) )*B( J, L )290 CONTINUEIF( BETA.EQ.ZERO )THENC( I, J ) = ALPHA*TEMPELSEC( I, J ) = ALPHA*TEMP + BETA*C( I, J )END IF300 CONTINUE310 CONTINUEEND IFELSEIF( CONJB )THEN** Form C := alpha*A'*conjg( B' ) + beta*C*DO 340, J = 1, NDO 330, I = 1, MTEMP = ZERODO 320, L = 1, KTEMP = TEMP + A( L, I )*DCONJG( B( J, L ) )320 CONTINUEIF( BETA.EQ.ZERO )THENC( I, J ) = ALPHA*TEMPELSEC( I, J ) = ALPHA*TEMP + BETA*C( I, J )END IF330 CONTINUE340 CONTINUEELSE** Form C := alpha*A'*B' + beta*C*DO 370, J = 1, NDO 360, I = 1, MTEMP = ZERODO 350, L = 1, KTEMP = TEMP + A( L, I )*B( J, L )350 CONTINUEIF( BETA.EQ.ZERO )THENC( I, J ) = ALPHA*TEMPELSEC( I, J ) = ALPHA*TEMP + BETA*C( I, J )END IF360 CONTINUE370 CONTINUEEND IFEND IF*RETURN** End of ZGEMM .*END