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cgen: fix string args in C calls; lower case consts in atof; fix struct types
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@ -108,24 +108,24 @@ const (
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//
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// parser state machine states
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//
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FSM_A = 0
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FSM_B = 1
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FSM_C = 2
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FSM_D = 3
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FSM_E = 4
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FSM_F = 5
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FSM_G = 6
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FSM_H = 7
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FSM_I = 8
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fsm_a = 0
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fsm_b = 1
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fsm_c = 2
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fsm_d = 3
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fsm_e = 4
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fsm_f = 5
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fsm_g = 6
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fsm_h = 7
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fsm_i = 8
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FSM_STOP = 9
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//
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// Possible parser return values.
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//
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PARSER_OK = 0 // parser finished OK
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PARSER_PZERO = 1 // no digits or number is smaller than +-2^-1022
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PARSER_MZERO = 2 // number is negative, module smaller
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PARSER_PINF = 3 // number is higher than +HUGE_VAL
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PARSER_MINF = 4 // number is lower than -HUGE_VAL
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parser_ok = 0 // parser finished OK
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parser_pzero = 1 // no digits or number is smaller than +-2^-1022
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parser_mzero = 2 // number is negative, module smaller
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parser_pinf = 3 // number is higher than +HUGE_VAL
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parser_minf = 4 // number is lower than -HUGE_VAL
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//
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// char constants
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// Note: Modify these if working with non-ASCII encoding
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@ -178,10 +178,10 @@ pub mut:
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// parser return a support struct with all the parsing information for the converter
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fn parser(s string) (int,PrepNumber) {
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mut state := FSM_A
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mut state := fsm_a
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mut digx := 0
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mut c := ` ` // initial value for kicking off the state machine
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mut result := PARSER_OK
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mut result := parser_ok
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mut expneg := false
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mut expexp := 0
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mut i := 0
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@ -190,17 +190,17 @@ fn parser(s string) (int,PrepNumber) {
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for state != FSM_STOP {
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match state {
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// skip starting spaces
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FSM_A {
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fsm_a {
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if is_space(c) == true {
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c = s[i++]
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}
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else {
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state = FSM_B
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state = fsm_b
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}
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}
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// check for the sign or point
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FSM_B {
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state = FSM_C
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fsm_b {
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state = fsm_c
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if c == PLUS {
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c = s[i++]
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//i++
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@ -218,20 +218,20 @@ fn parser(s string) (int,PrepNumber) {
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}
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}
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// skip the inital zeros
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FSM_C {
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fsm_c {
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if c == ZERO {
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c = s[i++]
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}
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else if c == DPOINT {
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c = s[i++]
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state = FSM_D
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state = fsm_d
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}
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else {
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state = FSM_E
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state = fsm_e
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}
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}
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// reading leading zeros in the fractional part of mantissa
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FSM_D {
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fsm_d {
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if c == ZERO {
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c = s[i++]
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if pn.exponent > -2147483647 {
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@ -239,11 +239,11 @@ fn parser(s string) (int,PrepNumber) {
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}
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}
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else {
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state = FSM_F
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state = fsm_f
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}
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}
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// reading integer part of mantissa
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FSM_E {
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fsm_e {
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if is_digit(c) {
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if digx < DIGITS {
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pn.mantissa *= 10
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@ -257,14 +257,14 @@ fn parser(s string) (int,PrepNumber) {
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}
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else if c == DPOINT {
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c = s[i++]
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state = FSM_F
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state = fsm_f
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}
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else {
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state = FSM_F
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state = fsm_f
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}
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}
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// reading fractional part of mantissa
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FSM_F {
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fsm_f {
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if is_digit(c) {
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if digx < DIGITS {
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pn.mantissa *= 10
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@ -276,14 +276,14 @@ fn parser(s string) (int,PrepNumber) {
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}
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else if is_exp(c) {
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c = s[i++]
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state = FSM_G
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state = fsm_g
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}
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else {
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state = FSM_G
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state = fsm_g
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}
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}
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// reading sign of exponent
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FSM_G {
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fsm_g {
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if c == PLUS {
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c = s[i++]
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}
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@ -291,19 +291,19 @@ fn parser(s string) (int,PrepNumber) {
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expneg = true
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c = s[i++]
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}
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state = FSM_H
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state = fsm_h
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}
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// skipping leading zeros of exponent
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FSM_H {
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fsm_h {
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if c == ZERO {
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c = s[i++]
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}
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else {
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state = FSM_I
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state = fsm_i
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}
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}
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// reading exponent digits
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FSM_I {
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fsm_i {
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if is_digit(c) {
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if expexp < 214748364 {
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expexp *= 10
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@ -328,26 +328,26 @@ fn parser(s string) (int,PrepNumber) {
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pn.exponent += expexp
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if pn.mantissa == 0 {
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if pn.negative {
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result = PARSER_MZERO
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result = parser_mzero
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}
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else {
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result = PARSER_PZERO
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result = parser_pzero
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}
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}
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else if (pn.exponent > 309) {
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if pn.negative {
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result = PARSER_MINF
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result = parser_minf
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}
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else {
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result = PARSER_PINF
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result = parser_pinf
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}
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}
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else if pn.exponent < -328 {
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if pn.negative {
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result = PARSER_MZERO
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result = parser_mzero
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}
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else {
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result = PARSER_PZERO
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result = parser_pzero
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}
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}
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return result,pn
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@ -538,19 +538,19 @@ pub fn atof64(s string) f64 {
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res_parsing,pn = parser(s + ' ') // TODO: need an extra char for now
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// println(pn)
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match res_parsing {
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PARSER_OK {
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parser_ok {
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res.u = converter(mut pn)
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}
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PARSER_PZERO {
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parser_pzero {
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res.u = DOUBLE_PLUS_ZERO
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}
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PARSER_MZERO {
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parser_mzero {
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res.u = DOUBLE_MINUS_ZERO
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}
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PARSER_PINF {
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parser_pinf {
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res.u = DOUBLE_PLUS_INFINITY
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}
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PARSER_MINF {
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parser_minf {
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res.u = DOUBLE_MINUS_INFINITY
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}
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else {
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@ -16,6 +16,7 @@ struct Gen {
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mut:
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fn_decl &ast.FnDecl // pointer to the FnDecl we are currently inside otherwise 0
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tmp_count int
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is_c_call bool // e.g. `C.printf("v")`
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}
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pub fn cgen(files []ast.File, table &table.Table) string {
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@ -86,8 +87,7 @@ pub fn (g mut Gen) write_multi_return_types() {
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// TODO copy pasta StructDecl
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// for field in struct_info.fields {
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for i, mr_typ in info.types {
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field_type_sym := g.table.get_type_symbol(mr_typ)
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type_name := field_type_sym.name.replace('.', '__')
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type_name := g.typ(mr_typ)
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g.definitions.writeln('\t$type_name arg${i};')
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}
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g.definitions.writeln('} $name;\n')
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@ -388,11 +388,13 @@ fn (g mut Gen) expr(node ast.Expr) {
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mut name := it.name.replace('.', '__')
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if it.is_c {
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// Skip "C__"
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g.is_c_call = true
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name = name[3..]
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}
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g.write('${name}(')
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g.call_args(it.args)
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g.write(')')
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g.is_c_call = false
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/*
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for i, expr in it.args {
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g.expr(expr)
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@ -587,8 +589,13 @@ fn (g mut Gen) expr(node ast.Expr) {
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g.write('sizeof($it.type_name)')
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}
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ast.StringLiteral {
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if g.is_c_call {
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g.write('"$it.val"')
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}
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else {
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g.write('tos3("$it.val")')
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}
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}
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// `user := User{name: 'Bob'}`
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ast.StructInit {
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styp := g.typ(it.typ)
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@ -744,8 +751,7 @@ fn (g mut Gen) write_types(types []table.TypeSymbol) {
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// g.definitions.writeln('typedef struct {')
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g.definitions.writeln('struct $name {')
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for field in info.fields {
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field_type_sym := g.table.get_type_symbol(field.typ)
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type_name := field_type_sym.name.replace('.', '__')
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type_name := g.typ(field.typ)
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g.definitions.writeln('\t$type_name $field.name;')
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}
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// g.definitions.writeln('} $name;\n')
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