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jv.c
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#include <stdint.h>
#include <stddef.h>
#include <assert.h>
#include <stdlib.h>
#include <stdio.h>
#include <string.h>
#include <stdarg.h>
#include <limits.h>
#include <math.h>
#include <float.h>
#include "jv_alloc.h"
#include "jv.h"
#include "jv_unicode.h"
#include "util.h"
#include "jv_dtoa.h"
#include "jv_dtoa_tsd.h"
// this means that we will manage the space for the struct
#define DECNUMDIGITS 1
#include "decNumber/decNumber.h"
#include "jv_type_private.h"
/*
* Internal refcounting helpers
*/
typedef struct jv_refcnt {
int count;
} jv_refcnt;
static const jv_refcnt JV_REFCNT_INIT = {1};
static void jvp_refcnt_inc(jv_refcnt* c) {
c->count++;
}
static int jvp_refcnt_dec(jv_refcnt* c) {
c->count--;
return c->count == 0;
}
static int jvp_refcnt_unshared(jv_refcnt* c) {
assert(c->count > 0);
return c->count == 1;
}
#define KIND_MASK 0xF
#define PFLAGS_MASK 0xF0
#define PTYPE_MASK 0x70
typedef enum {
JVP_PAYLOAD_NONE = 0,
JVP_PAYLOAD_ALLOCATED = 0x80,
} payload_flags;
#define JVP_MAKE_PFLAGS(ptype, allocated) ((((ptype) << 4) & PTYPE_MASK) | ((allocated) ? JVP_PAYLOAD_ALLOCATED : 0))
#define JVP_MAKE_FLAGS(kind, pflags) ((kind & KIND_MASK) | (pflags & PFLAGS_MASK))
#define JVP_FLAGS(j) ((j).kind_flags)
#define JVP_KIND(j) (JVP_FLAGS(j) & KIND_MASK)
#define JVP_HAS_FLAGS(j, flags) (JVP_FLAGS(j) == flags)
#define JVP_HAS_KIND(j, kind) (JVP_KIND(j) == kind)
#define JVP_IS_ALLOCATED(j) (j.kind_flags & JVP_PAYLOAD_ALLOCATED)
#define JVP_FLAGS_NULL JVP_MAKE_FLAGS(JV_KIND_NULL, JVP_PAYLOAD_NONE)
#define JVP_FLAGS_INVALID JVP_MAKE_FLAGS(JV_KIND_INVALID, JVP_PAYLOAD_NONE)
#define JVP_FLAGS_FALSE JVP_MAKE_FLAGS(JV_KIND_FALSE, JVP_PAYLOAD_NONE)
#define JVP_FLAGS_TRUE JVP_MAKE_FLAGS(JV_KIND_TRUE, JVP_PAYLOAD_NONE)
jv_kind jv_get_kind(jv x) {
return JVP_KIND(x);
}
const char* jv_kind_name(jv_kind k) {
switch (k) {
case JV_KIND_INVALID: return "<invalid>";
case JV_KIND_NULL: return "null";
case JV_KIND_FALSE: return "boolean";
case JV_KIND_TRUE: return "boolean";
case JV_KIND_NUMBER: return "number";
case JV_KIND_STRING: return "string";
case JV_KIND_ARRAY: return "array";
case JV_KIND_OBJECT: return "object";
}
assert(0 && "invalid kind");
return "<unknown>";
}
const jv JV_NULL = {JVP_FLAGS_NULL, 0, 0, 0, {0}};
const jv JV_INVALID = {JVP_FLAGS_INVALID, 0, 0, 0, {0}};
const jv JV_FALSE = {JVP_FLAGS_FALSE, 0, 0, 0, {0}};
const jv JV_TRUE = {JVP_FLAGS_TRUE, 0, 0, 0, {0}};
jv jv_true() {
return JV_TRUE;
}
jv jv_false() {
return JV_FALSE;
}
jv jv_null() {
return JV_NULL;
}
jv jv_bool(int x) {
return x ? JV_TRUE : JV_FALSE;
}
/*
* Invalid objects, with optional error messages
*/
#define JVP_FLAGS_INVALID_MSG JVP_MAKE_FLAGS(JV_KIND_INVALID, JVP_PAYLOAD_ALLOCATED)
typedef struct {
jv_refcnt refcnt;
jv errmsg;
} jvp_invalid;
jv jv_invalid_with_msg(jv err) {
if (JVP_HAS_KIND(err, JV_KIND_NULL))
return JV_INVALID;
jvp_invalid* i = jv_mem_alloc(sizeof(jvp_invalid));
i->refcnt = JV_REFCNT_INIT;
i->errmsg = err;
jv x = {JVP_FLAGS_INVALID_MSG, 0, 0, 0, {&i->refcnt}};
return x;
}
jv jv_invalid() {
return JV_INVALID;
}
jv jv_invalid_get_msg(jv inv) {
assert(JVP_HAS_KIND(inv, JV_KIND_INVALID));
jv x;
if (JVP_HAS_FLAGS(inv, JVP_FLAGS_INVALID_MSG)) {
x = jv_copy(((jvp_invalid*)inv.u.ptr)->errmsg);
}
else {
x = jv_null();
}
jv_free(inv);
return x;
}
int jv_invalid_has_msg(jv inv) {
assert(JVP_HAS_KIND(inv, JV_KIND_INVALID));
int r = JVP_HAS_FLAGS(inv, JVP_FLAGS_INVALID_MSG);
jv_free(inv);
return r;
}
static void jvp_invalid_free(jv x) {
assert(JVP_HAS_KIND(x, JV_KIND_INVALID));
if (JVP_HAS_FLAGS(x, JVP_FLAGS_INVALID_MSG) && jvp_refcnt_dec(x.u.ptr)) {
jv_free(((jvp_invalid*)x.u.ptr)->errmsg);
jv_mem_free(x.u.ptr);
}
}
/*
* Numbers
*/
enum {
JVP_NUMBER_NATIVE = 0,
JVP_NUMBER_DECIMAL = 1
};
#define JV_NUMBER_SIZE_INIT (0)
#define JV_NUMBER_SIZE_CONVERTED (1)
#define JVP_FLAGS_NUMBER_NATIVE JVP_MAKE_FLAGS(JV_KIND_NUMBER, JVP_MAKE_PFLAGS(JVP_NUMBER_NATIVE, 0))
#define JVP_FLAGS_NUMBER_NATIVE_STR JVP_MAKE_FLAGS(JV_KIND_NUMBER, JVP_MAKE_PFLAGS(JVP_NUMBER_NATIVE, 1))
#define JVP_FLAGS_NUMBER_LITERAL JVP_MAKE_FLAGS(JV_KIND_NUMBER, JVP_MAKE_PFLAGS(JVP_NUMBER_DECIMAL, 1))
#define STR(x) #x
#define XSTR(x) STR(x)
#define DBL_MAX_STR XSTR(DBL_MAX)
#define DBL_MIN_STR "-" XSTR(DBL_MAX)
// the decimal precision of binary double
#define BIN64_DEC_PRECISION (17)
#define DEC_NUMBER_STRING_GUARD (14)
#include <pthread.h>
static pthread_key_t dec_ctx_key;
static pthread_key_t dec_ctx_dbl_key;
static pthread_once_t dec_ctx_once = PTHREAD_ONCE_INIT;
#define DEC_CONTEXT() tsd_dec_ctx_get(&dec_ctx_key)
#define DEC_CONTEXT_TO_DOUBLE() tsd_dec_ctx_get(&dec_ctx_dbl_key)
// atexit finalizer to clean up the tsd dec contexts if main() exits
// without having called pthread_exit()
static void tsd_dec_ctx_fini() {
jv_mem_free(pthread_getspecific(dec_ctx_key));
jv_mem_free(pthread_getspecific(dec_ctx_dbl_key));
pthread_setspecific(dec_ctx_key, NULL);
pthread_setspecific(dec_ctx_dbl_key, NULL);
}
static void tsd_dec_ctx_init() {
if (pthread_key_create(&dec_ctx_key, jv_mem_free) != 0) {
fprintf(stderr, "error: cannot create thread specific key");
abort();
}
if (pthread_key_create(&dec_ctx_dbl_key, jv_mem_free) != 0) {
fprintf(stderr, "error: cannot create thread specific key");
abort();
}
atexit(tsd_dec_ctx_fini);
}
static decContext* tsd_dec_ctx_get(pthread_key_t *key) {
pthread_once(&dec_ctx_once, tsd_dec_ctx_init); // cannot fail
decContext *ctx = (decContext*)pthread_getspecific(*key);
if (ctx) {
return ctx;
}
decContext _ctx = {
0,
DEC_MAX_EMAX,
DEC_MIN_EMAX,
DEC_ROUND_HALF_UP,
0, /*no errors*/
0, /*status*/
0, /*no clamping*/
};
if (key == &dec_ctx_key) {
_ctx.digits = DEC_MAX_DIGITS;
} else if (key == &dec_ctx_dbl_key) {
_ctx.digits = BIN64_DEC_PRECISION;
}
ctx = malloc(sizeof(decContext));
if (ctx) {
*ctx = _ctx;
if (pthread_setspecific(*key, ctx) != 0) {
fprintf(stderr, "error: cannot store thread specific data");
abort();
}
}
return ctx;
}
typedef struct {
jv_refcnt refcnt;
double num_double;
char * literal_data;
decNumber num_decimal; // must be the last field in the structure for memory management
} jvp_literal_number;
typedef struct {
decNumber number;
decNumberUnit units[1];
} decNumberSingle;
typedef struct {
decNumber number;
decNumberUnit units[BIN64_DEC_PRECISION];
} decNumberDoublePrecision;
static inline int jvp_number_is_literal(jv n) {
assert(JVP_HAS_KIND(n, JV_KIND_NUMBER));
return JVP_HAS_FLAGS(n, JVP_FLAGS_NUMBER_LITERAL);
}
static jvp_literal_number* jvp_literal_number_ptr(jv j) {
assert(JVP_HAS_FLAGS(j, JVP_FLAGS_NUMBER_LITERAL));
return (jvp_literal_number*)j.u.ptr;
}
static decNumber* jvp_dec_number_ptr(jv j) {
assert(JVP_HAS_FLAGS(j, JVP_FLAGS_NUMBER_LITERAL));
return &(((jvp_literal_number*)j.u.ptr)->num_decimal);
}
static jvp_literal_number* jvp_literal_number_alloc(unsigned literal_length) {
/* The number of units needed is ceil(DECNUMDIGITS/DECDPUN) */
int units = ((literal_length+DECDPUN-1)/DECDPUN);
jvp_literal_number* n = jv_mem_alloc(
sizeof(jvp_literal_number)
+ sizeof(decNumberUnit) * units
);
return n;
}
static jv jvp_literal_number_new(const char * literal) {
jvp_literal_number * n = jvp_literal_number_alloc(strlen(literal));
n->refcnt = JV_REFCNT_INIT;
n->literal_data = NULL;
decContext *ctx = DEC_CONTEXT();
decNumberFromString(&n->num_decimal, literal, ctx);
n->num_double = NAN;
if (ctx->status & DEC_Conversion_syntax) {
jv_mem_free(n);
return JV_INVALID;
}
jv r = {JVP_FLAGS_NUMBER_LITERAL, 0, 0, JV_NUMBER_SIZE_INIT, {&n->refcnt}};
return r;
}
static double jvp_literal_number_to_double(jv j) {
assert(JVP_HAS_FLAGS(j, JVP_FLAGS_NUMBER_LITERAL));
decNumber *p_dec_number = jvp_dec_number_ptr(j);
decNumberDoublePrecision dec_double;
char literal[BIN64_DEC_PRECISION + DEC_NUMBER_STRING_GUARD + 1];
// reduce the number to the shortest possible form
// while also making sure than no more than BIN64_DEC_PRECISION
// digits are used (dec_context_to_double)
decNumberReduce(&dec_double.number, p_dec_number, DEC_CONTEXT_TO_DOUBLE());
decNumberToString(&dec_double.number, literal);
char *end;
return jvp_strtod(tsd_dtoa_context_get(), literal, &end);
}
static int jvp_number_equal(jv a, jv b) {
return jvp_number_cmp(a, b) == 0;
}
static const char* jvp_literal_number_literal(jv n) {
assert(JVP_HAS_FLAGS(n, JVP_FLAGS_NUMBER_LITERAL));
decNumber *pdec = jvp_dec_number_ptr(n);
jvp_literal_number* plit = jvp_literal_number_ptr(n);
if (decNumberIsNaN(pdec)) {
return "null";
}
if (decNumberIsInfinite(pdec)) {
// For backward compatibiltiy.
if (decNumberIsNegative(pdec)) {
return DBL_MIN_STR;
} else {
return DBL_MAX_STR;
}
}
if (plit->literal_data == NULL) {
int len = jvp_dec_number_ptr(n)->digits + 14;
plit->literal_data = jv_mem_alloc(len);
// Preserve the actual precision as we have parsed it
// don't do decNumberTrim(pdec);
decNumberToString(pdec, plit->literal_data);
}
return plit->literal_data;
}
int jv_number_has_literal(jv n) {
assert(JVP_HAS_KIND(n, JV_KIND_NUMBER));
return JVP_HAS_FLAGS(n, JVP_FLAGS_NUMBER_LITERAL);
}
const char* jv_number_get_literal(jv n) {
assert(JVP_HAS_KIND(n, JV_KIND_NUMBER));
if (JVP_HAS_FLAGS(n, JVP_FLAGS_NUMBER_LITERAL)) {
return jvp_literal_number_literal(n);
} else {
return NULL;
}
}
static void jvp_number_free(jv j) {
assert(JVP_HAS_KIND(j, JV_KIND_NUMBER));
if (JVP_HAS_FLAGS(j, JVP_FLAGS_NUMBER_LITERAL) && jvp_refcnt_dec(j.u.ptr)) {
jvp_literal_number* n = jvp_literal_number_ptr(j);
if (n->literal_data) {
jv_mem_free(n->literal_data);
}
jv_mem_free(n);
}
}
jv jv_number_with_literal(const char * literal) {
return jvp_literal_number_new(literal);
}
jv jv_number(double x) {
jv j = {JVP_FLAGS_NUMBER_NATIVE, 0, 0, 0, {.number = x}};
return j;
}
double jv_number_value(jv j) {
assert(JVP_HAS_KIND(j, JV_KIND_NUMBER));
#ifdef USE_DECNUM
if (JVP_HAS_FLAGS(j, JVP_FLAGS_NUMBER_LITERAL)) {
jvp_literal_number* n = jvp_literal_number_ptr(j);
if (j.size != JV_NUMBER_SIZE_CONVERTED) {
n->num_double = jvp_literal_number_to_double(j);
j.size = JV_NUMBER_SIZE_CONVERTED;
}
return n->num_double;
} else {
#endif
return j.u.number;
#ifdef USE_DECNUM
}
#endif
}
int jv_is_integer(jv j){
if(!JVP_HAS_KIND(j, JV_KIND_NUMBER)){
return 0;
}
double x = jv_number_value(j);
double ipart;
double fpart = modf(x, &ipart);
return fabs(fpart) < DBL_EPSILON;
}
int jvp_number_is_nan(jv n) {
assert(JVP_HAS_KIND(n, JV_KIND_NUMBER));
if (JVP_HAS_FLAGS(n, JVP_FLAGS_NUMBER_LITERAL)) {
decNumber *pdec = jvp_dec_number_ptr(n);
return decNumberIsNaN(pdec);
} else {
return n.u.number != n.u.number;
}
}
int jvp_number_cmp(jv a, jv b) {
assert(JVP_HAS_KIND(a, JV_KIND_NUMBER));
assert(JVP_HAS_KIND(b, JV_KIND_NUMBER));
if(JVP_HAS_FLAGS(a, JVP_FLAGS_NUMBER_LITERAL) && JVP_HAS_FLAGS(b, JVP_FLAGS_NUMBER_LITERAL)) {
decNumberSingle res;
decNumberCompare(&res.number,
jvp_dec_number_ptr(a),
jvp_dec_number_ptr(b),
DEC_CONTEXT()
);
if (decNumberIsZero(&res.number)) {
return 0;
} else if (decNumberIsNegative(&res.number)) {
return -1;
} else {
return 1;
}
} else {
double da = jv_number_value(a), db = jv_number_value(b);
if (da < db) {
return -1;
} else if (da == db) {
return 0;
} else {
return 1;
}
}
}
/*
* Arrays (internal helpers)
*/
#define ARRAY_SIZE_ROUND_UP(n) (((n)*3)/2)
#define JVP_FLAGS_ARRAY JVP_MAKE_FLAGS(JV_KIND_ARRAY, JVP_PAYLOAD_ALLOCATED)
static int imax(int a, int b) {
if (a>b) return a;
else return b;
}
//FIXME signed vs unsigned
typedef struct {
jv_refcnt refcnt;
int length, alloc_length;
jv elements[];
} jvp_array;
static jvp_array* jvp_array_ptr(jv a) {
assert(JVP_HAS_KIND(a, JV_KIND_ARRAY));
return (jvp_array*)a.u.ptr;
}
static jvp_array* jvp_array_alloc(unsigned size) {
jvp_array* a = jv_mem_alloc(sizeof(jvp_array) + sizeof(jv) * size);
a->refcnt.count = 1;
a->length = 0;
a->alloc_length = size;
return a;
}
static jv jvp_array_new(unsigned size) {
jv r = {JVP_FLAGS_ARRAY, 0, 0, 0, {&jvp_array_alloc(size)->refcnt}};
return r;
}
static void jvp_array_free(jv a) {
assert(JVP_HAS_KIND(a, JV_KIND_ARRAY));
if (jvp_refcnt_dec(a.u.ptr)) {
jvp_array* array = jvp_array_ptr(a);
for (int i=0; i<array->length; i++) {
jv_free(array->elements[i]);
}
jv_mem_free(array);
}
}
static int jvp_array_length(jv a) {
assert(JVP_HAS_KIND(a, JV_KIND_ARRAY));
return a.size;
}
static int jvp_array_offset(jv a) {
assert(JVP_HAS_KIND(a, JV_KIND_ARRAY));
return a.offset;
}
static jv* jvp_array_read(jv a, int i) {
assert(JVP_HAS_KIND(a, JV_KIND_ARRAY));
if (i >= 0 && i < jvp_array_length(a)) {
jvp_array* array = jvp_array_ptr(a);
assert(i + jvp_array_offset(a) < array->length);
return &array->elements[i + jvp_array_offset(a)];
} else {
return 0;
}
}
static jv* jvp_array_write(jv* a, int i) {
assert(i >= 0);
jvp_array* array = jvp_array_ptr(*a);
int pos = i + jvp_array_offset(*a);
if (pos < array->alloc_length && jvp_refcnt_unshared(a->u.ptr)) {
// use existing array space
for (int j = array->length; j <= pos; j++) {
array->elements[j] = JV_NULL;
}
array->length = imax(pos + 1, array->length);
a->size = imax(i + 1, a->size);
return &array->elements[pos];
} else {
// allocate a new array
int new_length = imax(i + 1, jvp_array_length(*a));
jvp_array* new_array = jvp_array_alloc(ARRAY_SIZE_ROUND_UP(new_length));
int j;
for (j = 0; j < jvp_array_length(*a); j++) {
new_array->elements[j] =
jv_copy(array->elements[j + jvp_array_offset(*a)]);
}
for (; j < new_length; j++) {
new_array->elements[j] = JV_NULL;
}
new_array->length = new_length;
jvp_array_free(*a);
jv new_jv = {JVP_FLAGS_ARRAY, 0, 0, new_length, {&new_array->refcnt}};
*a = new_jv;
return &new_array->elements[i];
}
}
static int jvp_array_equal(jv a, jv b) {
if (jvp_array_length(a) != jvp_array_length(b))
return 0;
if (jvp_array_ptr(a) == jvp_array_ptr(b) &&
jvp_array_offset(a) == jvp_array_offset(b))
return 1;
for (int i=0; i<jvp_array_length(a); i++) {
if (!jv_equal(jv_copy(*jvp_array_read(a, i)),
jv_copy(*jvp_array_read(b, i))))
return 0;
}
return 1;
}
static void jvp_clamp_slice_params(int len, int *pstart, int *pend)
{
if (*pstart < 0) *pstart = len + *pstart;
if (*pend < 0) *pend = len + *pend;
if (*pstart < 0) *pstart = 0;
if (*pstart > len) *pstart = len;
if (*pend > len) *pend = len;
if (*pend < *pstart) *pend = *pstart;
}
static int jvp_array_contains(jv a, jv b) {
int r = 1;
jv_array_foreach(b, bi, belem) {
int ri = 0;
jv_array_foreach(a, ai, aelem) {
if (jv_contains(aelem, jv_copy(belem))) {
ri = 1;
break;
}
}
jv_free(belem);
if (!ri) {
r = 0;
break;
}
}
return r;
}
/*
* Public
*/
static jv jvp_array_slice(jv a, int start, int end) {
assert(JVP_HAS_KIND(a, JV_KIND_ARRAY));
int len = jvp_array_length(a);
jvp_clamp_slice_params(len, &start, &end);
assert(0 <= start && start <= end && end <= len);
// FIXME: maybe slice should reallocate if the slice is small enough
if (start == end) {
jv_free(a);
return jv_array();
}
if (a.offset + start >= 1 << (sizeof(a.offset) * CHAR_BIT)) {
jv r = jv_array_sized(end - start);
for (int i = start; i < end; i++)
r = jv_array_append(r, jv_array_get(jv_copy(a), i));
jv_free(a);
return r;
} else {
a.offset += start;
a.size = end - start;
return a;
}
}
/*
* Arrays (public interface)
*/
jv jv_array_sized(int n) {
return jvp_array_new(n);
}
jv jv_array() {
return jv_array_sized(16);
}
int jv_array_length(jv j) {
assert(JVP_HAS_KIND(j, JV_KIND_ARRAY));
int len = jvp_array_length(j);
jv_free(j);
return len;
}
jv jv_array_get(jv j, int idx) {
assert(JVP_HAS_KIND(j, JV_KIND_ARRAY));
jv* slot = jvp_array_read(j, idx);
jv val;
if (slot) {
val = jv_copy(*slot);
} else {
val = jv_invalid();
}
jv_free(j);
return val;
}
jv jv_array_set(jv j, int idx, jv val) {
assert(JVP_HAS_KIND(j, JV_KIND_ARRAY));
if (idx < 0)
idx = jvp_array_length(j) + idx;
if (idx < 0) {
jv_free(j);
jv_free(val);
return jv_invalid_with_msg(jv_string("Out of bounds negative array index"));
}
// copy/free of val,j coalesced
jv* slot = jvp_array_write(&j, idx);
jv_free(*slot);
*slot = val;
return j;
}
jv jv_array_append(jv j, jv val) {
// copy/free of val,j coalesced
return jv_array_set(j, jv_array_length(jv_copy(j)), val);
}
jv jv_array_concat(jv a, jv b) {
assert(JVP_HAS_KIND(a, JV_KIND_ARRAY));
assert(JVP_HAS_KIND(b, JV_KIND_ARRAY));
// FIXME: could be faster
jv_array_foreach(b, i, elem) {
a = jv_array_append(a, elem);
}
jv_free(b);
return a;
}
jv jv_array_slice(jv a, int start, int end) {
assert(JVP_HAS_KIND(a, JV_KIND_ARRAY));
// copy/free of a coalesced
return jvp_array_slice(a, start, end);
}
jv jv_array_indexes(jv a, jv b) {
jv res = jv_array();
int idx = -1;
jv_array_foreach(a, ai, aelem) {
jv_free(aelem);
jv_array_foreach(b, bi, belem) {
if (!jv_equal(jv_array_get(jv_copy(a), ai + bi), jv_copy(belem)))
idx = -1;
else if (bi == 0 && idx == -1)
idx = ai;
jv_free(belem);
}
if (idx > -1)
res = jv_array_append(res, jv_number(idx));
idx = -1;
}
jv_free(a);
jv_free(b);
return res;
}
/*
* Strings (internal helpers)
*/
#define JVP_FLAGS_STRING JVP_MAKE_FLAGS(JV_KIND_STRING, JVP_PAYLOAD_ALLOCATED)
typedef struct {
jv_refcnt refcnt;
uint32_t hash;
// high 31 bits are length, low bit is a flag
// indicating whether hash has been computed.
uint32_t length_hashed;
uint32_t alloc_length;
char data[];
} jvp_string;
static jvp_string* jvp_string_ptr(jv a) {
assert(JVP_HAS_KIND(a, JV_KIND_STRING));
return (jvp_string*)a.u.ptr;
}
static jvp_string* jvp_string_alloc(uint32_t size) {
jvp_string* s = jv_mem_alloc(sizeof(jvp_string) + size + 1);
s->refcnt.count = 1;
s->alloc_length = size;
return s;
}
/* Copy a UTF8 string, replacing all badly encoded points with U+FFFD */
static jv jvp_string_copy_replace_bad(const char* data, uint32_t length) {
const char* end = data + length;
const char* i = data;
const char* cstart;
uint32_t maxlength = length * 3 + 1; // worst case: all bad bytes, each becomes a 3-byte U+FFFD
jvp_string* s = jvp_string_alloc(maxlength);
char* out = s->data;
int c = 0;
while ((i = jvp_utf8_next((cstart = i), end, &c))) {
if (c == -1) {
c = 0xFFFD; // U+FFFD REPLACEMENT CHARACTER
}
out += jvp_utf8_encode(c, out);
assert(out < s->data + maxlength);
}
length = out - s->data;
s->data[length] = 0;
s->length_hashed = length << 1;
jv r = {JVP_FLAGS_STRING, 0, 0, 0, {&s->refcnt}};
return r;
}
/* Assumes valid UTF8 */
static jv jvp_string_new(const char* data, uint32_t length) {
jvp_string* s = jvp_string_alloc(length);
s->length_hashed = length << 1;
if (data != NULL)
memcpy(s->data, data, length);
s->data[length] = 0;
jv r = {JVP_FLAGS_STRING, 0, 0, 0, {&s->refcnt}};
return r;
}
static jv jvp_string_empty_new(uint32_t length) {
jvp_string* s = jvp_string_alloc(length);
s->length_hashed = 0;
memset(s->data, 0, length);
jv r = {JVP_FLAGS_STRING, 0, 0, 0, {&s->refcnt}};
return r;
}
static void jvp_string_free(jv js) {
jvp_string* s = jvp_string_ptr(js);
if (jvp_refcnt_dec(&s->refcnt)) {
jv_mem_free(s);
}
}
static uint32_t jvp_string_length(jvp_string* s) {
return s->length_hashed >> 1;
}
static uint32_t jvp_string_remaining_space(jvp_string* s) {
assert(s->alloc_length >= jvp_string_length(s));
uint32_t r = s->alloc_length - jvp_string_length(s);
return r;
}
static jv jvp_string_append(jv string, const char* data, uint32_t len) {
jvp_string* s = jvp_string_ptr(string);
uint32_t currlen = jvp_string_length(s);
if (jvp_refcnt_unshared(string.u.ptr) &&
jvp_string_remaining_space(s) >= len) {
// the next string fits at the end of a
memcpy(s->data + currlen, data, len);
s->data[currlen + len] = 0;
s->length_hashed = (currlen + len) << 1;
return string;
} else {
// allocate a bigger buffer and copy
uint32_t allocsz = (currlen + len) * 2;
if (allocsz < 32) allocsz = 32;
jvp_string* news = jvp_string_alloc(allocsz);
news->length_hashed = (currlen + len) << 1;
memcpy(news->data, s->data, currlen);
memcpy(news->data + currlen, data, len);
news->data[currlen + len] = 0;
jvp_string_free(string);
jv r = {JVP_FLAGS_STRING, 0, 0, 0, {&news->refcnt}};
return r;
}
}
static const uint32_t HASH_SEED = 0x432A9843;
static uint32_t rotl32 (uint32_t x, int8_t r){
return (x << r) | (x >> (32 - r));
}
static uint32_t jvp_string_hash(jv jstr) {
jvp_string* str = jvp_string_ptr(jstr);
if (str->length_hashed & 1)
return str->hash;
/* The following is based on MurmurHash3.
MurmurHash3 was written by Austin Appleby, and is placed
in the public domain. */
const uint8_t* data = (const uint8_t*)str->data;
int len = (int)jvp_string_length(str);
const int nblocks = len / 4;
uint32_t h1 = HASH_SEED;
const uint32_t c1 = 0xcc9e2d51;
const uint32_t c2 = 0x1b873593;
const uint32_t* blocks = (const uint32_t *)(data + nblocks*4);
for(int i = -nblocks; i; i++) {
uint32_t k1 = blocks[i]; //FIXME: endianness/alignment
k1 *= c1;
k1 = rotl32(k1,15);
k1 *= c2;
h1 ^= k1;
h1 = rotl32(h1,13);
h1 = h1*5+0xe6546b64;
}
const uint8_t* tail = (const uint8_t*)(data + nblocks*4);
uint32_t k1 = 0;
switch(len & 3) {
case 3: k1 ^= tail[2] << 16;
case 2: k1 ^= tail[1] << 8;
case 1: k1 ^= tail[0];
k1 *= c1; k1 = rotl32(k1,15); k1 *= c2; h1 ^= k1;
}
h1 ^= len;
h1 ^= h1 >> 16;
h1 *= 0x85ebca6b;
h1 ^= h1 >> 13;
h1 *= 0xc2b2ae35;
h1 ^= h1 >> 16;
str->length_hashed |= 1;
str->hash = h1;
return h1;
}
static int jvp_string_equal(jv a, jv b) {
assert(JVP_HAS_KIND(a, JV_KIND_STRING));
assert(JVP_HAS_KIND(b, JV_KIND_STRING));
jvp_string* stra = jvp_string_ptr(a);
jvp_string* strb = jvp_string_ptr(b);
if (jvp_string_length(stra) != jvp_string_length(strb)) return 0;
return memcmp(stra->data, strb->data, jvp_string_length(stra)) == 0;
}
/*
* Strings (public API)
*/
jv jv_string_sized(const char* str, int len) {
return
jvp_utf8_is_valid(str, str+len) ?
jvp_string_new(str, len) :
jvp_string_copy_replace_bad(str, len);
}
jv jv_string_empty(int len) {
return jvp_string_empty_new(len);
}
jv jv_string(const char* str) {
return jv_string_sized(str, strlen(str));
}
int jv_string_length_bytes(jv j) {
assert(JVP_HAS_KIND(j, JV_KIND_STRING));
int r = jvp_string_length(jvp_string_ptr(j));
jv_free(j);
return r;
}
int jv_string_length_codepoints(jv j) {
assert(JVP_HAS_KIND(j, JV_KIND_STRING));
const char* i = jv_string_value(j);
const char* end = i + jv_string_length_bytes(jv_copy(j));
int c = 0, len = 0;
while ((i = jvp_utf8_next(i, end, &c))) len++;
jv_free(j);
return len;
}
jv jv_string_indexes(jv j, jv k) {
assert(JVP_HAS_KIND(j, JV_KIND_STRING));
assert(JVP_HAS_KIND(k, JV_KIND_STRING));
const char *jstr = jv_string_value(j);
const char *idxstr = jv_string_value(k);
const char *p;
int jlen = jv_string_length_bytes(jv_copy(j));
int idxlen = jv_string_length_bytes(jv_copy(k));
jv a = jv_array();
if (idxlen != 0) {
p = jstr;
while ((p = _jq_memmem(p, (jstr + jlen) - p, idxstr, idxlen)) != NULL) {
a = jv_array_append(a, jv_number(p - jstr));
p += idxlen;
}
}
jv_free(j);
jv_free(k);