github.com/c0deoo1/golang1.5@v0.0.0-20220525150107-c87c805d4593/src/cmd/compile/internal/big/ratconv_test.go (about)

     1  // Copyright 2015 The Go Authors. All rights reserved.
     2  // Use of this source code is governed by a BSD-style
     3  // license that can be found in the LICENSE file.
     4  
     5  package big
     6  
     7  import (
     8  	"bytes"
     9  	"fmt"
    10  	"math"
    11  	"strconv"
    12  	"strings"
    13  	"testing"
    14  )
    15  
    16  type StringTest struct {
    17  	in, out string
    18  	ok      bool
    19  }
    20  
    21  var setStringTests = []StringTest{
    22  	{"0", "0", true},
    23  	{"-0", "0", true},
    24  	{"1", "1", true},
    25  	{"-1", "-1", true},
    26  	{"1.", "1", true},
    27  	{"1e0", "1", true},
    28  	{"1.e1", "10", true},
    29  	{in: "1e"},
    30  	{in: "1.e"},
    31  	{in: "1e+14e-5"},
    32  	{in: "1e4.5"},
    33  	{in: "r"},
    34  	{in: "a/b"},
    35  	{in: "a.b"},
    36  	{"-0.1", "-1/10", true},
    37  	{"-.1", "-1/10", true},
    38  	{"2/4", "1/2", true},
    39  	{".25", "1/4", true},
    40  	{"-1/5", "-1/5", true},
    41  	{"8129567.7690E14", "812956776900000000000", true},
    42  	{"78189e+4", "781890000", true},
    43  	{"553019.8935e+8", "55301989350000", true},
    44  	{"98765432109876543210987654321e-10", "98765432109876543210987654321/10000000000", true},
    45  	{"9877861857500000E-7", "3951144743/4", true},
    46  	{"2169378.417e-3", "2169378417/1000000", true},
    47  	{"884243222337379604041632732738665534", "884243222337379604041632732738665534", true},
    48  	{"53/70893980658822810696", "53/70893980658822810696", true},
    49  	{"106/141787961317645621392", "53/70893980658822810696", true},
    50  	{"204211327800791583.81095", "4084226556015831676219/20000", true},
    51  	{in: "1/0"},
    52  }
    53  
    54  // These are not supported by fmt.Fscanf.
    55  var setStringTests2 = []StringTest{
    56  	{"0x10", "16", true},
    57  	{"-010/1", "-8", true}, // TODO(gri) should we even permit octal here?
    58  	{"-010.", "-10", true},
    59  	{"0x10/0x20", "1/2", true},
    60  	{"0b1000/3", "8/3", true},
    61  	// TODO(gri) add more tests
    62  }
    63  
    64  func TestRatSetString(t *testing.T) {
    65  	var tests []StringTest
    66  	tests = append(tests, setStringTests...)
    67  	tests = append(tests, setStringTests2...)
    68  
    69  	for i, test := range tests {
    70  		x, ok := new(Rat).SetString(test.in)
    71  
    72  		if ok {
    73  			if !test.ok {
    74  				t.Errorf("#%d SetString(%q) expected failure", i, test.in)
    75  			} else if x.RatString() != test.out {
    76  				t.Errorf("#%d SetString(%q) got %s want %s", i, test.in, x.RatString(), test.out)
    77  			}
    78  		} else if x != nil {
    79  			t.Errorf("#%d SetString(%q) got %p want nil", i, test.in, x)
    80  		}
    81  	}
    82  }
    83  
    84  func TestRatScan(t *testing.T) {
    85  	var buf bytes.Buffer
    86  	for i, test := range setStringTests {
    87  		x := new(Rat)
    88  		buf.Reset()
    89  		buf.WriteString(test.in)
    90  
    91  		_, err := fmt.Fscanf(&buf, "%v", x)
    92  		if err == nil != test.ok {
    93  			if test.ok {
    94  				t.Errorf("#%d (%s) error: %s", i, test.in, err)
    95  			} else {
    96  				t.Errorf("#%d (%s) expected error", i, test.in)
    97  			}
    98  			continue
    99  		}
   100  		if err == nil && x.RatString() != test.out {
   101  			t.Errorf("#%d got %s want %s", i, x.RatString(), test.out)
   102  		}
   103  	}
   104  }
   105  
   106  var floatStringTests = []struct {
   107  	in   string
   108  	prec int
   109  	out  string
   110  }{
   111  	{"0", 0, "0"},
   112  	{"0", 4, "0.0000"},
   113  	{"1", 0, "1"},
   114  	{"1", 2, "1.00"},
   115  	{"-1", 0, "-1"},
   116  	{".25", 2, "0.25"},
   117  	{".25", 1, "0.3"},
   118  	{".25", 3, "0.250"},
   119  	{"-1/3", 3, "-0.333"},
   120  	{"-2/3", 4, "-0.6667"},
   121  	{"0.96", 1, "1.0"},
   122  	{"0.999", 2, "1.00"},
   123  	{"0.9", 0, "1"},
   124  	{".25", -1, "0"},
   125  	{".55", -1, "1"},
   126  }
   127  
   128  func TestFloatString(t *testing.T) {
   129  	for i, test := range floatStringTests {
   130  		x, _ := new(Rat).SetString(test.in)
   131  
   132  		if x.FloatString(test.prec) != test.out {
   133  			t.Errorf("#%d got %s want %s", i, x.FloatString(test.prec), test.out)
   134  		}
   135  	}
   136  }
   137  
   138  // Test inputs to Rat.SetString.  The prefix "long:" causes the test
   139  // to be skipped in --test.short mode.  (The threshold is about 500us.)
   140  var float64inputs = []string{
   141  	// Constants plundered from strconv/testfp.txt.
   142  
   143  	// Table 1: Stress Inputs for Conversion to 53-bit Binary, < 1/2 ULP
   144  	"5e+125",
   145  	"69e+267",
   146  	"999e-026",
   147  	"7861e-034",
   148  	"75569e-254",
   149  	"928609e-261",
   150  	"9210917e+080",
   151  	"84863171e+114",
   152  	"653777767e+273",
   153  	"5232604057e-298",
   154  	"27235667517e-109",
   155  	"653532977297e-123",
   156  	"3142213164987e-294",
   157  	"46202199371337e-072",
   158  	"231010996856685e-073",
   159  	"9324754620109615e+212",
   160  	"78459735791271921e+049",
   161  	"272104041512242479e+200",
   162  	"6802601037806061975e+198",
   163  	"20505426358836677347e-221",
   164  	"836168422905420598437e-234",
   165  	"4891559871276714924261e+222",
   166  
   167  	// Table 2: Stress Inputs for Conversion to 53-bit Binary, > 1/2 ULP
   168  	"9e-265",
   169  	"85e-037",
   170  	"623e+100",
   171  	"3571e+263",
   172  	"81661e+153",
   173  	"920657e-023",
   174  	"4603285e-024",
   175  	"87575437e-309",
   176  	"245540327e+122",
   177  	"6138508175e+120",
   178  	"83356057653e+193",
   179  	"619534293513e+124",
   180  	"2335141086879e+218",
   181  	"36167929443327e-159",
   182  	"609610927149051e-255",
   183  	"3743626360493413e-165",
   184  	"94080055902682397e-242",
   185  	"899810892172646163e+283",
   186  	"7120190517612959703e+120",
   187  	"25188282901709339043e-252",
   188  	"308984926168550152811e-052",
   189  	"6372891218502368041059e+064",
   190  
   191  	// Table 14: Stress Inputs for Conversion to 24-bit Binary, <1/2 ULP
   192  	"5e-20",
   193  	"67e+14",
   194  	"985e+15",
   195  	"7693e-42",
   196  	"55895e-16",
   197  	"996622e-44",
   198  	"7038531e-32",
   199  	"60419369e-46",
   200  	"702990899e-20",
   201  	"6930161142e-48",
   202  	"25933168707e+13",
   203  	"596428896559e+20",
   204  
   205  	// Table 15: Stress Inputs for Conversion to 24-bit Binary, >1/2 ULP
   206  	"3e-23",
   207  	"57e+18",
   208  	"789e-35",
   209  	"2539e-18",
   210  	"76173e+28",
   211  	"887745e-11",
   212  	"5382571e-37",
   213  	"82381273e-35",
   214  	"750486563e-38",
   215  	"3752432815e-39",
   216  	"75224575729e-45",
   217  	"459926601011e+15",
   218  
   219  	// Constants plundered from strconv/atof_test.go.
   220  
   221  	"0",
   222  	"1",
   223  	"+1",
   224  	"1e23",
   225  	"1E23",
   226  	"100000000000000000000000",
   227  	"1e-100",
   228  	"123456700",
   229  	"99999999999999974834176",
   230  	"100000000000000000000001",
   231  	"100000000000000008388608",
   232  	"100000000000000016777215",
   233  	"100000000000000016777216",
   234  	"-1",
   235  	"-0.1",
   236  	"-0", // NB: exception made for this input
   237  	"1e-20",
   238  	"625e-3",
   239  
   240  	// largest float64
   241  	"1.7976931348623157e308",
   242  	"-1.7976931348623157e308",
   243  	// next float64 - too large
   244  	"1.7976931348623159e308",
   245  	"-1.7976931348623159e308",
   246  	// the border is ...158079
   247  	// borderline - okay
   248  	"1.7976931348623158e308",
   249  	"-1.7976931348623158e308",
   250  	// borderline - too large
   251  	"1.797693134862315808e308",
   252  	"-1.797693134862315808e308",
   253  
   254  	// a little too large
   255  	"1e308",
   256  	"2e308",
   257  	"1e309",
   258  
   259  	// way too large
   260  	"1e310",
   261  	"-1e310",
   262  	"1e400",
   263  	"-1e400",
   264  	"long:1e400000",
   265  	"long:-1e400000",
   266  
   267  	// denormalized
   268  	"1e-305",
   269  	"1e-306",
   270  	"1e-307",
   271  	"1e-308",
   272  	"1e-309",
   273  	"1e-310",
   274  	"1e-322",
   275  	// smallest denormal
   276  	"5e-324",
   277  	"4e-324",
   278  	"3e-324",
   279  	// too small
   280  	"2e-324",
   281  	// way too small
   282  	"1e-350",
   283  	"long:1e-400000",
   284  	// way too small, negative
   285  	"-1e-350",
   286  	"long:-1e-400000",
   287  
   288  	// try to overflow exponent
   289  	// [Disabled: too slow and memory-hungry with rationals.]
   290  	// "1e-4294967296",
   291  	// "1e+4294967296",
   292  	// "1e-18446744073709551616",
   293  	// "1e+18446744073709551616",
   294  
   295  	// http://www.exploringbinary.com/java-hangs-when-converting-2-2250738585072012e-308/
   296  	"2.2250738585072012e-308",
   297  	// http://www.exploringbinary.com/php-hangs-on-numeric-value-2-2250738585072011e-308/
   298  	"2.2250738585072011e-308",
   299  
   300  	// A very large number (initially wrongly parsed by the fast algorithm).
   301  	"4.630813248087435e+307",
   302  
   303  	// A different kind of very large number.
   304  	"22.222222222222222",
   305  	"long:2." + strings.Repeat("2", 4000) + "e+1",
   306  
   307  	// Exactly halfway between 1 and math.Nextafter(1, 2).
   308  	// Round to even (down).
   309  	"1.00000000000000011102230246251565404236316680908203125",
   310  	// Slightly lower; still round down.
   311  	"1.00000000000000011102230246251565404236316680908203124",
   312  	// Slightly higher; round up.
   313  	"1.00000000000000011102230246251565404236316680908203126",
   314  	// Slightly higher, but you have to read all the way to the end.
   315  	"long:1.00000000000000011102230246251565404236316680908203125" + strings.Repeat("0", 10000) + "1",
   316  
   317  	// Smallest denormal, 2^(-1022-52)
   318  	"4.940656458412465441765687928682213723651e-324",
   319  	// Half of smallest denormal, 2^(-1022-53)
   320  	"2.470328229206232720882843964341106861825e-324",
   321  	// A little more than the exact half of smallest denormal
   322  	// 2^-1075 + 2^-1100.  (Rounds to 1p-1074.)
   323  	"2.470328302827751011111470718709768633275e-324",
   324  	// The exact halfway between smallest normal and largest denormal:
   325  	// 2^-1022 - 2^-1075.  (Rounds to 2^-1022.)
   326  	"2.225073858507201136057409796709131975935e-308",
   327  
   328  	"1152921504606846975",  //   1<<60 - 1
   329  	"-1152921504606846975", // -(1<<60 - 1)
   330  	"1152921504606846977",  //   1<<60 + 1
   331  	"-1152921504606846977", // -(1<<60 + 1)
   332  
   333  	"1/3",
   334  }
   335  
   336  // isFinite reports whether f represents a finite rational value.
   337  // It is equivalent to !math.IsNan(f) && !math.IsInf(f, 0).
   338  func isFinite(f float64) bool {
   339  	return math.Abs(f) <= math.MaxFloat64
   340  }
   341  
   342  func TestFloat32SpecialCases(t *testing.T) {
   343  	for _, input := range float64inputs {
   344  		if strings.HasPrefix(input, "long:") {
   345  			if testing.Short() {
   346  				continue
   347  			}
   348  			input = input[len("long:"):]
   349  		}
   350  
   351  		r, ok := new(Rat).SetString(input)
   352  		if !ok {
   353  			t.Errorf("Rat.SetString(%q) failed", input)
   354  			continue
   355  		}
   356  		f, exact := r.Float32()
   357  
   358  		// 1. Check string -> Rat -> float32 conversions are
   359  		// consistent with strconv.ParseFloat.
   360  		// Skip this check if the input uses "a/b" rational syntax.
   361  		if !strings.Contains(input, "/") {
   362  			e64, _ := strconv.ParseFloat(input, 32)
   363  			e := float32(e64)
   364  
   365  			// Careful: negative Rats too small for
   366  			// float64 become -0, but Rat obviously cannot
   367  			// preserve the sign from SetString("-0").
   368  			switch {
   369  			case math.Float32bits(e) == math.Float32bits(f):
   370  				// Ok: bitwise equal.
   371  			case f == 0 && r.Num().BitLen() == 0:
   372  				// Ok: Rat(0) is equivalent to both +/- float64(0).
   373  			default:
   374  				t.Errorf("strconv.ParseFloat(%q) = %g (%b), want %g (%b); delta = %g", input, e, e, f, f, f-e)
   375  			}
   376  		}
   377  
   378  		if !isFinite(float64(f)) {
   379  			continue
   380  		}
   381  
   382  		// 2. Check f is best approximation to r.
   383  		if !checkIsBestApprox32(t, f, r) {
   384  			// Append context information.
   385  			t.Errorf("(input was %q)", input)
   386  		}
   387  
   388  		// 3. Check f->R->f roundtrip is non-lossy.
   389  		checkNonLossyRoundtrip32(t, f)
   390  
   391  		// 4. Check exactness using slow algorithm.
   392  		if wasExact := new(Rat).SetFloat64(float64(f)).Cmp(r) == 0; wasExact != exact {
   393  			t.Errorf("Rat.SetString(%q).Float32().exact = %t, want %t", input, exact, wasExact)
   394  		}
   395  	}
   396  }
   397  
   398  func TestFloat64SpecialCases(t *testing.T) {
   399  	for _, input := range float64inputs {
   400  		if strings.HasPrefix(input, "long:") {
   401  			if testing.Short() {
   402  				continue
   403  			}
   404  			input = input[len("long:"):]
   405  		}
   406  
   407  		r, ok := new(Rat).SetString(input)
   408  		if !ok {
   409  			t.Errorf("Rat.SetString(%q) failed", input)
   410  			continue
   411  		}
   412  		f, exact := r.Float64()
   413  
   414  		// 1. Check string -> Rat -> float64 conversions are
   415  		// consistent with strconv.ParseFloat.
   416  		// Skip this check if the input uses "a/b" rational syntax.
   417  		if !strings.Contains(input, "/") {
   418  			e, _ := strconv.ParseFloat(input, 64)
   419  
   420  			// Careful: negative Rats too small for
   421  			// float64 become -0, but Rat obviously cannot
   422  			// preserve the sign from SetString("-0").
   423  			switch {
   424  			case math.Float64bits(e) == math.Float64bits(f):
   425  				// Ok: bitwise equal.
   426  			case f == 0 && r.Num().BitLen() == 0:
   427  				// Ok: Rat(0) is equivalent to both +/- float64(0).
   428  			default:
   429  				t.Errorf("strconv.ParseFloat(%q) = %g (%b), want %g (%b); delta = %g", input, e, e, f, f, f-e)
   430  			}
   431  		}
   432  
   433  		if !isFinite(f) {
   434  			continue
   435  		}
   436  
   437  		// 2. Check f is best approximation to r.
   438  		if !checkIsBestApprox64(t, f, r) {
   439  			// Append context information.
   440  			t.Errorf("(input was %q)", input)
   441  		}
   442  
   443  		// 3. Check f->R->f roundtrip is non-lossy.
   444  		checkNonLossyRoundtrip64(t, f)
   445  
   446  		// 4. Check exactness using slow algorithm.
   447  		if wasExact := new(Rat).SetFloat64(f).Cmp(r) == 0; wasExact != exact {
   448  			t.Errorf("Rat.SetString(%q).Float64().exact = %t, want %t", input, exact, wasExact)
   449  		}
   450  	}
   451  }