mirror of
https://github.com/krgamestudios/Toy.git
synced 2026-04-15 14:54:07 +10:00
Added hyperbolic and additional comparisons
This commit is contained in:
328
repl/lib_math.c
328
repl/lib_math.c
@@ -560,9 +560,243 @@ static int nativeAtan2(Toy_Interpreter* interpreter, Toy_LiteralArray* arguments
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return 1;
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}
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static int nativeSinh(Toy_Interpreter* interpreter, Toy_LiteralArray* arguments) {
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if (arguments->count != 1) {
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interpreter->errorOutput("Incorrect number of arguments to sinh\n");
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return -1;
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}
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//get the argument
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Toy_Literal radiansLiteral = Toy_popLiteralArray(arguments);
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//parse the argument (if it's an identifier)
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Toy_Literal radiansLiteralIdn = radiansLiteral;
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if (TOY_IS_IDENTIFIER(radiansLiteral) && Toy_parseIdentifierToValue(interpreter, &radiansLiteral)) {
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Toy_freeLiteral(radiansLiteralIdn);
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}
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//check the argument type
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if (!(TOY_IS_INTEGER(radiansLiteral) || TOY_IS_FLOAT(radiansLiteral))) {
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interpreter->errorOutput("Incorrect argument type passed to sinh\n");
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Toy_freeLiteral(radiansLiteral);
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return -1;
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}
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// cast ints to floats to handle all types of numbers
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float radians = TOY_IS_INTEGER(radiansLiteral)? TOY_AS_INTEGER(radiansLiteral) : TOY_AS_FLOAT(radiansLiteral);
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// calculate the result
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float result = sinhf(radians);
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//return the result
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Toy_Literal resultLiteral = TOY_TO_FLOAT_LITERAL(result);
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Toy_pushLiteralArray(&interpreter->stack, resultLiteral);
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//cleanup
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Toy_freeLiteral(resultLiteral);
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Toy_freeLiteral(radiansLiteral);
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return 1;
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}
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static int nativeCosh(Toy_Interpreter* interpreter, Toy_LiteralArray* arguments) {
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if (arguments->count != 1) {
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interpreter->errorOutput("Incorrect number of arguments to cosh\n");
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return -1;
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}
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//get the argument
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Toy_Literal radiansLiteral = Toy_popLiteralArray(arguments);
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//parse the argument (if it's an identifier)
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Toy_Literal radiansLiteralIdn = radiansLiteral;
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if (TOY_IS_IDENTIFIER(radiansLiteral) && Toy_parseIdentifierToValue(interpreter, &radiansLiteral)) {
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Toy_freeLiteral(radiansLiteralIdn);
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}
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//check the argument type
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if (!(TOY_IS_INTEGER(radiansLiteral) || TOY_IS_FLOAT(radiansLiteral))) {
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interpreter->errorOutput("Incorrect argument type passed to cosh\n");
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Toy_freeLiteral(radiansLiteral);
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return -1;
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}
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// cast ints to floats to handle all types of numbers
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float radians = TOY_IS_INTEGER(radiansLiteral)? TOY_AS_INTEGER(radiansLiteral) : TOY_AS_FLOAT(radiansLiteral);
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// calculate the result
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float result = coshf(radians);
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//return the result
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Toy_Literal resultLiteral = TOY_TO_FLOAT_LITERAL(result);
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Toy_pushLiteralArray(&interpreter->stack, resultLiteral);
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//cleanup
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Toy_freeLiteral(resultLiteral);
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Toy_freeLiteral(radiansLiteral);
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return 1;
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}
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static int nativeTanh(Toy_Interpreter* interpreter, Toy_LiteralArray* arguments) {
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if (arguments->count != 1) {
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interpreter->errorOutput("Incorrect number of arguments to tanh\n");
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return -1;
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}
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//get the argument
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Toy_Literal radiansLiteral = Toy_popLiteralArray(arguments);
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//parse the argument (if it's an identifier)
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Toy_Literal radiansLiteralIdn = radiansLiteral;
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if (TOY_IS_IDENTIFIER(radiansLiteral) && Toy_parseIdentifierToValue(interpreter, &radiansLiteral)) {
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Toy_freeLiteral(radiansLiteralIdn);
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}
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//check the argument type
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if (!(TOY_IS_INTEGER(radiansLiteral) || TOY_IS_FLOAT(radiansLiteral))) {
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interpreter->errorOutput("Incorrect argument type passed to tanh\n");
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Toy_freeLiteral(radiansLiteral);
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return -1;
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}
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// cast ints to floats to handle all types of numbers
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float radians = TOY_IS_INTEGER(radiansLiteral)? TOY_AS_INTEGER(radiansLiteral) : TOY_AS_FLOAT(radiansLiteral);
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// calculate the result
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float result = tanhf(radians);
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//return the result
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Toy_Literal resultLiteral = TOY_TO_FLOAT_LITERAL(result);
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Toy_pushLiteralArray(&interpreter->stack, resultLiteral);
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//cleanup
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Toy_freeLiteral(resultLiteral);
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Toy_freeLiteral(radiansLiteral);
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return 1;
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}
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static int nativeAsinh(Toy_Interpreter* interpreter, Toy_LiteralArray* arguments) {
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if (arguments->count != 1) {
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interpreter->errorOutput("Incorrect number of arguments to asinh\n");
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return -1;
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}
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//get the argument
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Toy_Literal radiansLiteral = Toy_popLiteralArray(arguments);
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//parse the argument (if it's an identifier)
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Toy_Literal radiansLiteralIdn = radiansLiteral;
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if (TOY_IS_IDENTIFIER(radiansLiteral) && Toy_parseIdentifierToValue(interpreter, &radiansLiteral)) {
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Toy_freeLiteral(radiansLiteralIdn);
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}
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//check the argument type
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if (!(TOY_IS_INTEGER(radiansLiteral) || TOY_IS_FLOAT(radiansLiteral))) {
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interpreter->errorOutput("Incorrect argument type passed to asinh\n");
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Toy_freeLiteral(radiansLiteral);
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return -1;
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}
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// cast ints to floats to handle all types of numbers
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float radians = TOY_IS_INTEGER(radiansLiteral)? TOY_AS_INTEGER(radiansLiteral) : TOY_AS_FLOAT(radiansLiteral);
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// calculate the result
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float result = asinhf(radians);
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//return the result
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Toy_Literal resultLiteral = TOY_TO_FLOAT_LITERAL(result);
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Toy_pushLiteralArray(&interpreter->stack, resultLiteral);
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//cleanup
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Toy_freeLiteral(resultLiteral);
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Toy_freeLiteral(radiansLiteral);
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return 1;
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}
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static int nativeAcosh(Toy_Interpreter* interpreter, Toy_LiteralArray* arguments) {
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if (arguments->count != 1) {
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interpreter->errorOutput("Incorrect number of arguments to acosh\n");
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return -1;
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}
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//get the argument
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Toy_Literal radiansLiteral = Toy_popLiteralArray(arguments);
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//parse the argument (if it's an identifier)
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Toy_Literal radiansLiteralIdn = radiansLiteral;
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if (TOY_IS_IDENTIFIER(radiansLiteral) && Toy_parseIdentifierToValue(interpreter, &radiansLiteral)) {
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Toy_freeLiteral(radiansLiteralIdn);
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}
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//check the argument type
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if (!(TOY_IS_INTEGER(radiansLiteral) || TOY_IS_FLOAT(radiansLiteral))) {
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interpreter->errorOutput("Incorrect argument type passed to acosh\n");
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Toy_freeLiteral(radiansLiteral);
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return -1;
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}
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// cast ints to floats to handle all types of numbers
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float radians = TOY_IS_INTEGER(radiansLiteral)? TOY_AS_INTEGER(radiansLiteral) : TOY_AS_FLOAT(radiansLiteral);
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// calculate the result
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float result = acoshf(radians);
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//return the result
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Toy_Literal resultLiteral = TOY_TO_FLOAT_LITERAL(result);
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Toy_pushLiteralArray(&interpreter->stack, resultLiteral);
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//cleanup
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Toy_freeLiteral(resultLiteral);
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Toy_freeLiteral(radiansLiteral);
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return 1;
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}
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static int nativeAtanh(Toy_Interpreter* interpreter, Toy_LiteralArray* arguments) {
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if (arguments->count != 1) {
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interpreter->errorOutput("Incorrect number of arguments to atanh\n");
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return -1;
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}
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//get the argument
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Toy_Literal radiansLiteral = Toy_popLiteralArray(arguments);
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//parse the argument (if it's an identifier)
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Toy_Literal radiansLiteralIdn = radiansLiteral;
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if (TOY_IS_IDENTIFIER(radiansLiteral) && Toy_parseIdentifierToValue(interpreter, &radiansLiteral)) {
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Toy_freeLiteral(radiansLiteralIdn);
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}
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//check the argument type
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if (!(TOY_IS_INTEGER(radiansLiteral) || TOY_IS_FLOAT(radiansLiteral))) {
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interpreter->errorOutput("Incorrect argument type passed to atanh\n");
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Toy_freeLiteral(radiansLiteral);
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return -1;
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}
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// cast ints to floats to handle all types of numbers
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float radians = TOY_IS_INTEGER(radiansLiteral)? TOY_AS_INTEGER(radiansLiteral) : TOY_AS_FLOAT(radiansLiteral);
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// calculate the result
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float result = atanhf(radians);
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//return the result
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Toy_Literal resultLiteral = TOY_TO_FLOAT_LITERAL(result);
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Toy_pushLiteralArray(&interpreter->stack, resultLiteral);
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//cleanup
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Toy_freeLiteral(resultLiteral);
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Toy_freeLiteral(radiansLiteral);
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return 1;
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}
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static int nativeCheckIsNaN(Toy_Interpreter* interpreter, Toy_LiteralArray* arguments) {
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if (arguments->count != 1) {
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interpreter->errorOutput("Incorrect number of arguments to tan\n");
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interpreter->errorOutput("Incorrect number of arguments to checkIsNaN\n");
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return -1;
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}
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@@ -577,7 +811,7 @@ static int nativeCheckIsNaN(Toy_Interpreter* interpreter, Toy_LiteralArray* argu
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//check the argument type
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if (!(TOY_IS_INTEGER(xLiteral) || TOY_IS_FLOAT(xLiteral))) {
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interpreter->errorOutput("Incorrect argument type passed to tan\n");
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interpreter->errorOutput("Incorrect argument type passed to checkIsNaN\n");
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Toy_freeLiteral(xLiteral);
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return -1;
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}
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@@ -599,6 +833,84 @@ static int nativeCheckIsNaN(Toy_Interpreter* interpreter, Toy_LiteralArray* argu
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return 1;
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}
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static int nativeCheckIsFinite(Toy_Interpreter* interpreter, Toy_LiteralArray* arguments) {
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if (arguments->count != 1) {
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interpreter->errorOutput("Incorrect number of arguments to checkIsFinite\n");
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return -1;
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}
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//get the argument
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Toy_Literal xLiteral = Toy_popLiteralArray(arguments);
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//parse the argument (if it's an identifier)
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Toy_Literal xLiteralIdn = xLiteral;
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if (TOY_IS_IDENTIFIER(xLiteral) && Toy_parseIdentifierToValue(interpreter, &xLiteral)) {
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Toy_freeLiteral(xLiteralIdn);
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}
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//check the argument type
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if (!(TOY_IS_INTEGER(xLiteral) || TOY_IS_FLOAT(xLiteral))) {
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interpreter->errorOutput("Incorrect argument type passed to checkIsFinite\n");
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Toy_freeLiteral(xLiteral);
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return -1;
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}
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// cast ints to floats to handle all types of numbers
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float x = TOY_IS_INTEGER(xLiteral)? TOY_AS_INTEGER(xLiteral) : TOY_AS_FLOAT(xLiteral);
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// calculate the result
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float result = isfinite(x);
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//return the result
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Toy_Literal resultLiteral = TOY_TO_BOOLEAN_LITERAL(result);
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Toy_pushLiteralArray(&interpreter->stack, resultLiteral);
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//cleanup
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Toy_freeLiteral(resultLiteral);
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Toy_freeLiteral(xLiteral);
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return 1;
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}
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static int nativeCheckIsInfinite(Toy_Interpreter* interpreter, Toy_LiteralArray* arguments) {
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if (arguments->count != 1) {
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interpreter->errorOutput("Incorrect number of arguments to checkIsInfinite\n");
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return -1;
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}
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//get the argument
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Toy_Literal xLiteral = Toy_popLiteralArray(arguments);
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//parse the argument (if it's an identifier)
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Toy_Literal xLiteralIdn = xLiteral;
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if (TOY_IS_IDENTIFIER(xLiteral) && Toy_parseIdentifierToValue(interpreter, &xLiteral)) {
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Toy_freeLiteral(xLiteralIdn);
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}
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//check the argument type
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if (!(TOY_IS_INTEGER(xLiteral) || TOY_IS_FLOAT(xLiteral))) {
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interpreter->errorOutput("Incorrect argument type passed to checkIsInfinite\n");
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Toy_freeLiteral(xLiteral);
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return -1;
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}
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// cast ints to floats to handle all types of numbers
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float x = TOY_IS_INTEGER(xLiteral)? TOY_AS_INTEGER(xLiteral) : TOY_AS_FLOAT(xLiteral);
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// calculate the result
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float result = isinf(x);
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//return the result
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Toy_Literal resultLiteral = TOY_TO_BOOLEAN_LITERAL(result);
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Toy_pushLiteralArray(&interpreter->stack, resultLiteral);
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//cleanup
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Toy_freeLiteral(resultLiteral);
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Toy_freeLiteral(xLiteral);
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return 1;
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}
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static int nativeEpsilionCompare(Toy_Interpreter* interpreter, Toy_LiteralArray* arguments) {
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if (arguments->count != 2) {
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interpreter->errorOutput("Incorrect number of arguments to mod\n");
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@@ -661,6 +973,8 @@ typedef struct Natives {
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int Toy_hookMath(Toy_Interpreter* interpreter, Toy_Literal identifier, Toy_Literal alias) {
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//build the natives list
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Natives natives[] = {
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// Exponential
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// Power
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{"pow", nativePow},
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{"sqrt", nativeSqrt},
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@@ -678,8 +992,18 @@ int Toy_hookMath(Toy_Interpreter* interpreter, Toy_Literal identifier, Toy_Liter
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{"atan", nativeAtan},
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{"atans", nativeAtan2},
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// Hyperbolic
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{"sinh", nativeSinh},
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{"cosh", nativeCosh},
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{"tanh", nativeTanh},
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{"asinh", nativeAsinh},
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{"acosh", nativeAcosh},
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{"atanh", nativeAtanh},
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// Comparison
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{"checkIsNaN", nativeCheckIsNaN},
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{"chechIsFinite", nativeCheckIsFinite},
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{"chechIsInfinite", nativeCheckIsInfinite},
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{"epsilionCompare", nativeEpsilionCompare},
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{NULL, NULL}
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@@ -102,6 +102,54 @@ import math;
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}
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// test sinh
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{
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assert epsilionCompare(sinh(1), 1.175201), "sinh(1) failed";
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assert epsilionCompare(sinh(-1), -1.175201), "sinh(-1) failed";
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assert epsilionCompare(sinh(0), 0), "sinh(0) failed";
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}
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// test cosh
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{
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assert epsilionCompare(cosh(1), 1.543081), "cosh(1) failed";
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assert epsilionCompare(cosh(-1), 1.543081), "cosh(-1) failed";
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assert epsilionCompare(cosh(0), 1), "cosh(0) failed";
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}
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// test tanh
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{
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assert epsilionCompare(tanh(1), 0.761594), "tanh(1) failed";
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assert epsilionCompare(tanh(-1), -0.761594), "tanh(-1) failed";
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assert epsilionCompare(tanh(0), 0), "tanh(0) failed";
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}
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// test asinh
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{
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assert epsilionCompare(asinh(1), 0.881374), "asinh(1) failed";
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assert epsilionCompare(asinh(-1), -0.881374), "asinh(-1) failed";
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assert epsilionCompare(asinh(0), 0), "asinh(0) failed";
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}
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// test acosh
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{
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assert epsilionCompare(acosh(1), 0), "acosh(1) failed";
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assert checkIsNaN(acosh(-1)) == true, "acosh(-1) failed";
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assert checkIsNaN(acosh(0)) == true, "acosh(0) failed";
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}
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// test atanh
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{
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assert chechIsInfinite(atanh(1)) == true, "atanh(1) failed";
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assert chechIsInfinite(atanh(-1)) == true, "atanh(-1) failed";
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assert epsilionCompare(atanh(0), 0), "atanh(0) failed";
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}
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// test checkIsNaN
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{
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assert checkIsNaN(NAN) == true, "checkIsNaN(NAN) failed";
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@@ -111,6 +159,23 @@ import math;
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}
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// test chechIsFinite
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{
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assert chechIsFinite(NAN) == false, "chechIsFinite(NAN) failed";
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assert chechIsFinite(INFINITY) == false, "chechIsFinite(INFINITY) failed";
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assert chechIsFinite(0.0) == true, "chechIsFinite(0.0) failed";
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assert chechIsFinite(1) == true, "chechIsFinite(1) failed";
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}
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// test chechIsInfinite
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{
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assert chechIsInfinite(NAN) == false, "chechIsInfinite(NAN) failed";
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assert chechIsInfinite(INFINITY) == true, "chechIsInfinite(INFINITY) failed";
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assert chechIsInfinite(0.0) == false, "chechIsInfinite(0.0) failed";
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assert chechIsInfinite(1) == false, "chechIsInfinite(1) failed";
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}
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// test epsilionCompare
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{
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assert epsilionCompare(1, 1) == true, "epsilionCompare(1, 1) failed";
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