mirror of
https://github.com/janet-lang/janet
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ded3d06387
make the self hosted compiler easier to make. The C version of the compiler does not need to be efficient.
200 lines
7.4 KiB
C
200 lines
7.4 KiB
C
#include <gst/disasm.h>
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/* Width of padded opcode names */
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#define OP_WIDTH 20
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/* Print various register and arguments to instructions */
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static void dasm_print_slot(FILE * out, uint16_t index) { fprintf(out, "%d ", index); }
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static void dasm_print_i16(FILE * out, int16_t number) { fprintf(out, "#%d ", number); }
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static void dasm_print_i32(FILE * out, int32_t number) { fprintf(out, "#%d ", number); }
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static void dasm_print_f64(FILE * out, double number) { fprintf(out, "#%f ", number); }
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static void dasm_print_literal(FILE * out, uint16_t index) { fprintf(out, "(%d) ", index); }
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static void dasm_print_upvalue(FILE * out, uint16_t level, uint16_t index) {
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fprintf(out, "<%d, %d> ", level, index);
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}
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/* Print the name of the argument but pad it */
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static void dasm_print_arg(FILE * out, const char * name) {
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uint32_t i = 0;
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char c;
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while ((c = *name++)) {
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putc(c, out);
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++i;
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}
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for (; i < OP_WIDTH; ++i)
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fputc(' ', out);
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}
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/* Print instructions that take a fixed number of arguments */
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static uint32_t dasm_fixed_op(FILE * out, const uint16_t * current,
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const char * name, uint32_t size) {
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uint32_t i;
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dasm_print_arg(out, name);
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for (i = 1; i <= size; ++i)
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dasm_print_slot(out, current[i]);
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return size + 1;
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}
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/* Print instructions that take a variable number of arguments */
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static uint32_t dasm_varg_op(FILE * out, const uint16_t * current,
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const char * name, uint32_t extra) {
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uint32_t i, argCount;
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dasm_print_arg(out, name);
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for (i = 0; i < extra; ++i) {
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dasm_print_slot(out, current[i + 1]);
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}
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argCount = current[extra + 1];
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fprintf(out, ": "); /* Argument separator */
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for (i = 0; i < argCount; ++i) {
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dasm_print_slot(out, current[i + extra + 2]);
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}
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return argCount + extra + 2;
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}
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/* Print the disassembly for a function definition */
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void gst_dasm_funcdef(FILE * out, GstFuncDef * def) {
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gst_dasm(out, def->byteCode, def->byteCodeLen);
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}
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/* Print the disassembly for a function */
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void gst_dasm_function(FILE * out, GstFunction * f) {
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gst_dasm(out, f->def->byteCode, f->def->byteCodeLen);
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}
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/* Disassemble some bytecode and display it as opcode + arguments assembly */
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void gst_dasm(FILE * out, uint16_t *byteCode, uint32_t len) {
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uint16_t *current = byteCode;
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uint16_t *end = byteCode + len;
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while (current < end) {
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switch (*current) {
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default:
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current += dasm_fixed_op(out, current, "unknown", 0);
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break;
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case GST_OP_ADD:
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current += dasm_fixed_op(out, current, "add", 3);
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break;
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case GST_OP_SUB:
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current += dasm_fixed_op(out, current, "sub", 3);
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break;
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case GST_OP_MUL:
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current += dasm_fixed_op(out, current, "mul", 3);
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break;
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case GST_OP_DIV:
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current += dasm_fixed_op(out, current, "div", 3);
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break;
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case GST_OP_NOT:
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current += dasm_fixed_op(out, current, "not", 2);
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break;
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case GST_OP_FLS:
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current += dasm_fixed_op(out, current, "loadFalse", 1);
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break;
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case GST_OP_TRU:
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current += dasm_fixed_op(out, current, "loadTrue", 1);
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break;
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case GST_OP_NIL:
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current += dasm_fixed_op(out, current, "loadNil", 1);
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break;
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case GST_OP_I16:
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dasm_print_arg(out, "loadInt16");
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dasm_print_slot(out, current[1]);
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dasm_print_i16(out, ((int16_t *)current)[2]);
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current += 3;
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break;
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case GST_OP_UPV:
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dasm_print_arg(out, "loadUpValue");
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dasm_print_slot(out, current[1]);
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dasm_print_upvalue(out, current[2], current[3]);
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current += 4;
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break;
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case GST_OP_JIF:
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dasm_print_arg(out, "jumpIf");
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dasm_print_slot(out, current[1]);
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dasm_print_i32(out, ((int32_t *)(current + 2))[0]);
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current += 4;
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break;
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case GST_OP_JMP:
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dasm_print_arg(out, "jump");
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dasm_print_i32(out, ((int32_t *)(current + 1))[0]);
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current += 3;
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break;
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case GST_OP_SUV:
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dasm_print_arg(out, "setUpValue");
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dasm_print_slot(out, current[1]);
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dasm_print_upvalue(out, current[2], current[3]);
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current += 4;
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break;
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case GST_OP_CST:
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dasm_print_arg(out, "loadLiteral");
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dasm_print_slot(out, current[1]);
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dasm_print_literal(out, current[2]);
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current += 3;
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break;
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case GST_OP_I32:
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dasm_print_arg(out, "loadInt32");
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dasm_print_slot(out, current[1]);
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dasm_print_i32(out, ((int32_t *)(current + 2))[0]);
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current += 4;
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break;
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case GST_OP_F64:
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dasm_print_arg(out, "loadFloat64");
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dasm_print_slot(out, current[1]);
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dasm_print_f64(out, ((double *)(current + 2))[0]);
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current += 6;
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break;
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case GST_OP_MOV:
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current += dasm_fixed_op(out, current, "move", 2);
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break;
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case GST_OP_CLN:
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dasm_print_arg(out, "makeClosure");
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dasm_print_slot(out, current[1]);
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dasm_print_literal(out, current[2]);
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current += 3;
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break;
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case GST_OP_EQL:
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current += dasm_fixed_op(out, current, "equals", 3);
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break;
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case GST_OP_LTN:
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current += dasm_fixed_op(out, current, "lessThan", 3);
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break;
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case GST_OP_LTE:
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current += dasm_fixed_op(out, current, "lessThanEquals", 3);
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break;
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case GST_OP_ARR:
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current += dasm_varg_op(out, current, "array", 1);
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break;
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case GST_OP_DIC:
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current += dasm_varg_op(out, current, "object", 1);
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break;
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case GST_OP_TUP:
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current += dasm_varg_op(out, current, "tuple", 1);
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break;
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case GST_OP_ERR:
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current += dasm_fixed_op(out, current, "error", 1);
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break;
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case GST_OP_TRY:
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dasm_print_arg(out, "try");
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dasm_print_slot(out, current[1]);
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dasm_print_i32(out, *(int32_t *)(current + 2));
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current += 4;
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break;
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case GST_OP_UTY:
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current += dasm_fixed_op(out, current, "untry", 0);
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break;
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case GST_OP_RET:
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current += dasm_fixed_op(out, current, "return", 1);
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break;
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case GST_OP_RTN:
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current += dasm_fixed_op(out, current, "returnNil", 0);
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break;
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case GST_OP_CAL:
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current += dasm_varg_op(out, current, "call", 2);
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break;
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case GST_OP_TCL:
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current += dasm_varg_op(out, current, "tailCall", 1);
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break;
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}
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fprintf(out, "\n");
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}
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}
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