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SUBROUTINE DLASRT( ID, N, D, INFO )** -- LAPACK routine (version 3.0) --* Univ. of Tennessee, Univ. of California Berkeley, NAG Ltd.,* Courant Institute, Argonne National Lab, and Rice University* September 30, 1994** .. Scalar Arguments ..CHARACTER IDINTEGER INFO, N* ..* .. Array Arguments ..DOUBLE PRECISION D( * )* ..** Purpose* =======** Sort the numbers in D in increasing order (if ID = 'I') or* in decreasing order (if ID = 'D' ).** Use Quick Sort, reverting to Insertion sort on arrays of* size <= 20. Dimension of STACK limits N to about 2**32.** Arguments* =========** ID (input) CHARACTER*1* = 'I': sort D in increasing order;* = 'D': sort D in decreasing order.** N (input) INTEGER* The length of the array D.** D (input/output) DOUBLE PRECISION array, dimension (N)* On entry, the array to be sorted.* On exit, D has been sorted into increasing order* (D(1) <= ... <= D(N) ) or into decreasing order* (D(1) >= ... >= D(N) ), depending on ID.** INFO (output) INTEGER* = 0: successful exit* < 0: if INFO = -i, the i-th argument had an illegal value** =====================================================================** .. Parameters ..INTEGER SELECTPARAMETER ( SELECT = 20 )* ..* .. Local Scalars ..INTEGER DIR, ENDD, I, J, START, STKPNTDOUBLE PRECISION D1, D2, D3, DMNMX, TMP* ..* .. Local Arrays ..INTEGER STACK( 2, 32 )* ..* .. External Functions ..LOGICAL LSAMEEXTERNAL LSAME* ..* .. External Subroutines ..EXTERNAL XERBLA* ..* .. Executable Statements ..** Test the input paramters.*INFO = 0DIR = -1IF( LSAME( ID, 'D' ) ) THENDIR = 0ELSE IF( LSAME( ID, 'I' ) ) THENDIR = 1END IFIF( DIR.EQ.-1 ) THENINFO = -1ELSE IF( N.LT.0 ) THENINFO = -2END IFIF( INFO.NE.0 ) THENCALL XERBLA( 'DLASRT', -INFO )RETURNEND IF** Quick return if possible*IF( N.LE.1 )$ RETURN*STKPNT = 1STACK( 1, 1 ) = 1STACK( 2, 1 ) = N10 CONTINUESTART = STACK( 1, STKPNT )ENDD = STACK( 2, STKPNT )STKPNT = STKPNT - 1IF( ENDD-START.LE.SELECT .AND. ENDD-START.GT.0 ) THEN** Do Insertion sort on D( START:ENDD )*IF( DIR.EQ.0 ) THEN** Sort into decreasing order*DO 30 I = START + 1, ENDDDO 20 J = I, START + 1, -1IF( D( J ).GT.D( J-1 ) ) THENDMNMX = D( J )D( J ) = D( J-1 )D( J-1 ) = DMNMXELSEGO TO 30END IF20 CONTINUE30 CONTINUE*ELSE** Sort into increasing order*DO 50 I = START + 1, ENDDDO 40 J = I, START + 1, -1IF( D( J ).LT.D( J-1 ) ) THENDMNMX = D( J )D( J ) = D( J-1 )D( J-1 ) = DMNMXELSEGO TO 50END IF40 CONTINUE50 CONTINUE*END IF*ELSE IF( ENDD-START.GT.SELECT ) THEN** Partition D( START:ENDD ) and stack parts, largest one first** Choose partition entry as median of 3*D1 = D( START )D2 = D( ENDD )I = ( START+ENDD ) / 2D3 = D( I )IF( D1.LT.D2 ) THENIF( D3.LT.D1 ) THENDMNMX = D1ELSE IF( D3.LT.D2 ) THENDMNMX = D3ELSEDMNMX = D2END IFELSEIF( D3.LT.D2 ) THENDMNMX = D2ELSE IF( D3.LT.D1 ) THENDMNMX = D3ELSEDMNMX = D1END IFEND IF*IF( DIR.EQ.0 ) THEN** Sort into decreasing order*I = START - 1J = ENDD + 160 CONTINUE70 CONTINUEJ = J - 1IF( D( J ).LT.DMNMX )$ GO TO 7080 CONTINUEI = I + 1IF( D( I ).GT.DMNMX )$ GO TO 80IF( I.LT.J ) THENTMP = D( I )D( I ) = D( J )D( J ) = TMPGO TO 60END IFIF( J-START.GT.ENDD-J-1 ) THENSTKPNT = STKPNT + 1STACK( 1, STKPNT ) = STARTSTACK( 2, STKPNT ) = JSTKPNT = STKPNT + 1STACK( 1, STKPNT ) = J + 1STACK( 2, STKPNT ) = ENDDELSESTKPNT = STKPNT + 1STACK( 1, STKPNT ) = J + 1STACK( 2, STKPNT ) = ENDDSTKPNT = STKPNT + 1STACK( 1, STKPNT ) = STARTSTACK( 2, STKPNT ) = JEND IFELSE** Sort into increasing order*I = START - 1J = ENDD + 190 CONTINUE100 CONTINUEJ = J - 1IF( D( J ).GT.DMNMX )$ GO TO 100110 CONTINUEI = I + 1IF( D( I ).LT.DMNMX )$ GO TO 110IF( I.LT.J ) THENTMP = D( I )D( I ) = D( J )D( J ) = TMPGO TO 90END IFIF( J-START.GT.ENDD-J-1 ) THENSTKPNT = STKPNT + 1STACK( 1, STKPNT ) = STARTSTACK( 2, STKPNT ) = JSTKPNT = STKPNT + 1STACK( 1, STKPNT ) = J + 1STACK( 2, STKPNT ) = ENDDELSESTKPNT = STKPNT + 1STACK( 1, STKPNT ) = J + 1STACK( 2, STKPNT ) = ENDDSTKPNT = STKPNT + 1STACK( 1, STKPNT ) = STARTSTACK( 2, STKPNT ) = JEND IFEND IFEND IFIF( STKPNT.GT.0 )$ GO TO 10RETURN** End of DLASRT*END