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This allows use of newer math/big (and later debug/pe) without maintaining a vendored copy somewhere in cmd. Use for math/big, deleting cmd/compile/internal/big. Change-Id: I2bffa7a9ef115015be29fafdb02acc3e7a665d11 Reviewed-on: https://go-review.googlesource.com/31010 Reviewed-by: Minux Ma <minux@golang.org> Reviewed-by: Ian Lance Taylor <iant@golang.org>
309 lines
5.4 KiB
Go
309 lines
5.4 KiB
Go
// Copyright 2009 The Go Authors. All rights reserved.
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// Use of this source code is governed by a BSD-style
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// license that can be found in the LICENSE file.
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package gc
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import (
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"fmt"
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"math/big"
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)
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// implements integer arithmetic
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// Mpint represents an integer constant.
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type Mpint struct {
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Val big.Int
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Ovf bool // set if Val overflowed compiler limit (sticky)
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Rune bool // set if syntax indicates default type rune
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}
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func (a *Mpint) SetOverflow() {
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a.Val.SetUint64(1) // avoid spurious div-zero errors
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a.Ovf = true
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}
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func (a *Mpint) checkOverflow(extra int) bool {
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// We don't need to be precise here, any reasonable upper limit would do.
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// For now, use existing limit so we pass all the tests unchanged.
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if a.Val.BitLen()+extra > Mpprec {
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a.SetOverflow()
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}
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return a.Ovf
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}
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func (a *Mpint) Set(b *Mpint) {
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a.Val.Set(&b.Val)
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}
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func (a *Mpint) SetFloat(b *Mpflt) int {
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// avoid converting huge floating-point numbers to integers
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// (2*Mpprec is large enough to permit all tests to pass)
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if b.Val.MantExp(nil) > 2*Mpprec {
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return -1
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}
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if _, acc := b.Val.Int(&a.Val); acc == big.Exact {
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return 0
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}
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const delta = 16 // a reasonably small number of bits > 0
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var t big.Float
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t.SetPrec(Mpprec - delta)
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// try rounding down a little
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t.SetMode(big.ToZero)
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t.Set(&b.Val)
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if _, acc := t.Int(&a.Val); acc == big.Exact {
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return 0
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}
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// try rounding up a little
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t.SetMode(big.AwayFromZero)
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t.Set(&b.Val)
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if _, acc := t.Int(&a.Val); acc == big.Exact {
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return 0
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}
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return -1
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}
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func (a *Mpint) Add(b *Mpint) {
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if a.Ovf || b.Ovf {
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if nsavederrors+nerrors == 0 {
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yyerror("ovf in Mpint Add")
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}
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a.SetOverflow()
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return
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}
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a.Val.Add(&a.Val, &b.Val)
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if a.checkOverflow(0) {
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yyerror("constant addition overflow")
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}
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}
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func (a *Mpint) Sub(b *Mpint) {
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if a.Ovf || b.Ovf {
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if nsavederrors+nerrors == 0 {
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yyerror("ovf in Mpint Sub")
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}
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a.SetOverflow()
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return
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}
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a.Val.Sub(&a.Val, &b.Val)
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if a.checkOverflow(0) {
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yyerror("constant subtraction overflow")
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}
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}
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func (a *Mpint) Mul(b *Mpint) {
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if a.Ovf || b.Ovf {
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if nsavederrors+nerrors == 0 {
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yyerror("ovf in Mpint Mul")
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}
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a.SetOverflow()
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return
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}
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a.Val.Mul(&a.Val, &b.Val)
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if a.checkOverflow(0) {
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yyerror("constant multiplication overflow")
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}
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}
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func (a *Mpint) Quo(b *Mpint) {
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if a.Ovf || b.Ovf {
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if nsavederrors+nerrors == 0 {
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yyerror("ovf in Mpint Quo")
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}
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a.SetOverflow()
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return
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}
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a.Val.Quo(&a.Val, &b.Val)
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if a.checkOverflow(0) {
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// can only happen for div-0 which should be checked elsewhere
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yyerror("constant division overflow")
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}
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}
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func (a *Mpint) Rem(b *Mpint) {
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if a.Ovf || b.Ovf {
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if nsavederrors+nerrors == 0 {
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yyerror("ovf in Mpint Rem")
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}
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a.SetOverflow()
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return
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}
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a.Val.Rem(&a.Val, &b.Val)
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if a.checkOverflow(0) {
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// should never happen
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yyerror("constant modulo overflow")
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}
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}
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func (a *Mpint) Or(b *Mpint) {
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if a.Ovf || b.Ovf {
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if nsavederrors+nerrors == 0 {
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yyerror("ovf in Mpint Or")
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}
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a.SetOverflow()
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return
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}
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a.Val.Or(&a.Val, &b.Val)
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}
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func (a *Mpint) And(b *Mpint) {
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if a.Ovf || b.Ovf {
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if nsavederrors+nerrors == 0 {
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yyerror("ovf in Mpint And")
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}
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a.SetOverflow()
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return
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}
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a.Val.And(&a.Val, &b.Val)
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}
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func (a *Mpint) AndNot(b *Mpint) {
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if a.Ovf || b.Ovf {
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if nsavederrors+nerrors == 0 {
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yyerror("ovf in Mpint AndNot")
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}
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a.SetOverflow()
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return
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}
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a.Val.AndNot(&a.Val, &b.Val)
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}
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func (a *Mpint) Xor(b *Mpint) {
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if a.Ovf || b.Ovf {
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if nsavederrors+nerrors == 0 {
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yyerror("ovf in Mpint Xor")
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}
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a.SetOverflow()
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return
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}
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a.Val.Xor(&a.Val, &b.Val)
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}
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func (a *Mpint) Lsh(b *Mpint) {
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if a.Ovf || b.Ovf {
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if nsavederrors+nerrors == 0 {
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yyerror("ovf in Mpint Lsh")
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}
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a.SetOverflow()
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return
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}
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s := b.Int64()
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if s < 0 || s >= Mpprec {
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msg := "shift count too large"
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if s < 0 {
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msg = "invalid negative shift count"
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}
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yyerror("%s: %d", msg, s)
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a.SetInt64(0)
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return
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}
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if a.checkOverflow(int(s)) {
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yyerror("constant shift overflow")
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return
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}
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a.Val.Lsh(&a.Val, uint(s))
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}
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func (a *Mpint) Rsh(b *Mpint) {
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if a.Ovf || b.Ovf {
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if nsavederrors+nerrors == 0 {
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yyerror("ovf in Mpint Rsh")
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}
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a.SetOverflow()
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return
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}
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s := b.Int64()
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if s < 0 {
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yyerror("invalid negative shift count: %d", s)
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if a.Val.Sign() < 0 {
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a.SetInt64(-1)
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} else {
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a.SetInt64(0)
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}
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return
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}
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a.Val.Rsh(&a.Val, uint(s))
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}
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func (a *Mpint) Cmp(b *Mpint) int {
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return a.Val.Cmp(&b.Val)
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}
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func (a *Mpint) CmpInt64(c int64) int {
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if c == 0 {
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return a.Val.Sign() // common case shortcut
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}
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return a.Val.Cmp(big.NewInt(c))
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}
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func (a *Mpint) Neg() {
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a.Val.Neg(&a.Val)
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}
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func (a *Mpint) Int64() int64 {
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if a.Ovf {
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if nsavederrors+nerrors == 0 {
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yyerror("constant overflow")
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}
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return 0
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}
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return a.Val.Int64()
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}
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func (a *Mpint) SetInt64(c int64) {
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a.Val.SetInt64(c)
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}
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func (a *Mpint) SetString(as string) {
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_, ok := a.Val.SetString(as, 0)
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if !ok {
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// required syntax is [+-][0[x]]d*
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// At the moment we lose precise error cause;
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// the old code distinguished between:
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// - malformed hex constant
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// - malformed octal constant
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// - malformed decimal constant
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// TODO(gri) use different conversion function
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yyerror("malformed integer constant: %s", as)
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a.Val.SetUint64(0)
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return
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}
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if a.checkOverflow(0) {
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yyerror("constant too large: %s", as)
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}
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}
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func (x *Mpint) String() string {
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return bconv(x, 0)
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}
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func bconv(xval *Mpint, flag FmtFlag) string {
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if flag&FmtSharp != 0 {
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return fmt.Sprintf("%#x", &xval.Val)
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}
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return xval.Val.String()
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}
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