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rand: fix edge case, when bit length is 31 and 63, add tests for rand.intn(2147483647)!
etc (#18714)
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@ -55,7 +55,7 @@ pub fn (mut rng PRNG) u32n(max u32) !u32 {
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// the closest power of two. Then we loop until we find
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// an int in the required range
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bit_len := bits.len_32(max)
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if bit_len == 32 {
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if _unlikely_(bit_len == 32) {
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for {
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value := rng.u32()
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if value < max {
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@ -63,7 +63,11 @@ pub fn (mut rng PRNG) u32n(max u32) !u32 {
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}
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}
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} else {
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mask := (u32(1) << (bit_len + 1)) - 1
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mask := if _unlikely_(bit_len == 31) {
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u32(0x7FFFFFFF)
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} else {
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(u32(1) << (bit_len + 1)) - 1
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}
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for {
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value := rng.u32() & mask
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if value < max {
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@ -81,7 +85,7 @@ pub fn (mut rng PRNG) u64n(max u64) !u64 {
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return error('max must be positive integer')
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}
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bit_len := bits.len_64(max)
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if bit_len == 64 {
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if _unlikely_(bit_len == 64) {
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for {
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value := rng.u64()
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if value < max {
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@ -89,7 +93,11 @@ pub fn (mut rng PRNG) u64n(max u64) !u64 {
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}
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}
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} else {
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mask := (u64(1) << (bit_len + 1)) - 1
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mask := if _unlikely_(bit_len == 63) {
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u64(0x7FFFFFFFFFFFFFFF)
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} else {
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(u64(1) << (bit_len + 1)) - 1
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}
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for {
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value := rng.u64() & mask
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if value < max {
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@ -454,3 +454,23 @@ fn test_element2() {
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assert 4 != e
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}
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}
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fn test_proper_masking() {
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under32 := []int{len: 10, init: index * 0 + rand.intn(1073741823)!}
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assert under32 != [0].repeat(10)
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over32 := []int{len: 10, init: index * 0 + rand.intn(1073741824)!}
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assert over32 != [0].repeat(10)
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under64 := []i64{len: 10, init: index * 0 + rand.i64n(i64(4611686018427387903))!}
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assert under64 != [i64(0)].repeat(10)
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over64 := []i64{len: 10, init: index * 0 + rand.i64n(i64(4611686018427387904))!}
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assert over64 != [i64(0)].repeat(10)
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almost_full32 := []int{len: 10, init: index * 0 + rand.intn(2147483647)!}
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assert almost_full32 != [0].repeat(10)
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almost_full64 := []i64{len: 10, init: index * 0 + rand.i64n(i64(9223372036854775807))!}
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assert almost_full64 != [i64(0)].repeat(10)
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}
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