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android/guava-tests/benchmark/com/google/common/math/QuantilesBenchmark.java
private final double[][] datasets = new double[0x100][]; @BeforeExperiment void setUp() { Random rng = new Random(); for (int i = 0; i < 0x100; i++) { datasets[i] = new double[datasetSize]; for (int j = 0; j < datasetSize; j++) { datasets[i][j] = rng.nextDouble(); } } } private double[] dataset(int i) {
Created: Fri Dec 26 12:43:10 GMT 2025 - Last Modified: Wed May 14 19:40:47 GMT 2025 - 3.2K bytes - Click Count (0) -
android/guava-tests/test/com/google/common/math/PairedStatsAccumulatorTest.java
assertThat(manyValuesAccumulatorByAddAllPartitionedPairedStats.populationCovariance()) .isWithin(ALLOWED_ERROR) .of(MANY_VALUES_SUM_OF_PRODUCTS_OF_DELTAS / MANY_VALUES_COUNT); // For datasets of many double values, we test many combinations of finite and non-finite // x-values: for (ManyValues values : ALL_MANY_VALUES) { PairedStatsAccumulator accumulator =
Created: Fri Dec 26 12:43:10 GMT 2025 - Last Modified: Thu Dec 11 20:45:32 GMT 2025 - 23.4K bytes - Click Count (0) -
.github/ISSUE_TEMPLATE/tflite-converter-issue.md
#### Option A: Reference colab notebooks 1) Reference [TensorFlow Model Colab](https://colab.research.google.com/gist/ymodak/e96a4270b953201d5362c61c1e8b78aa/tensorflow-datasets.ipynb?authuser=1): Demonstrate how to build your TF model.
Created: Tue Dec 30 12:39:10 GMT 2025 - Last Modified: Wed Jun 15 03:35:58 GMT 2022 - 2.1K bytes - Click Count (0) -
android/guava-tests/test/com/google/common/math/PairedStatsTest.java
assertThat(TWO_VALUES_PAIRED_STATS.populationCovariance()) .isWithin(ALLOWED_ERROR) .of(TWO_VALUES_SUM_OF_PRODUCTS_OF_DELTAS / 2); // For datasets of many double values, we test many combinations of finite and non-finite // x-values: for (ManyValues values : ALL_MANY_VALUES) { PairedStats stats = createPairedStatsOf(values.asIterable(), OTHER_MANY_VALUES);
Created: Fri Dec 26 12:43:10 GMT 2025 - Last Modified: Thu Dec 11 20:45:32 GMT 2025 - 14K bytes - Click Count (0) -
guava-tests/test/com/google/common/math/PairedStatsTest.java
assertThat(TWO_VALUES_PAIRED_STATS.populationCovariance()) .isWithin(ALLOWED_ERROR) .of(TWO_VALUES_SUM_OF_PRODUCTS_OF_DELTAS / 2); // For datasets of many double values, we test many combinations of finite and non-finite // x-values: for (ManyValues values : ALL_MANY_VALUES) { PairedStats stats = createPairedStatsOf(values.asIterable(), OTHER_MANY_VALUES);
Created: Fri Dec 26 12:43:10 GMT 2025 - Last Modified: Thu Dec 11 20:45:32 GMT 2025 - 14K bytes - Click Count (0) -
guava-tests/test/com/google/common/math/PairedStatsAccumulatorTest.java
assertThat(manyValuesAccumulatorByAddAllPartitionedPairedStats.populationCovariance()) .isWithin(ALLOWED_ERROR) .of(MANY_VALUES_SUM_OF_PRODUCTS_OF_DELTAS / MANY_VALUES_COUNT); // For datasets of many double values, we test many combinations of finite and non-finite // x-values: for (ManyValues values : ALL_MANY_VALUES) { PairedStatsAccumulator accumulator =
Created: Fri Dec 26 12:43:10 GMT 2025 - Last Modified: Thu Dec 11 20:45:32 GMT 2025 - 23.4K bytes - Click Count (0) -
guava-tests/test/com/google/common/math/StatsAccumulatorTest.java
.isWithin(ALLOWED_ERROR) .of(MANY_VALUES_MEAN); assertThat(manyValuesAccumulatorByAddAllStatsAccumulator.mean()) .isWithin(ALLOWED_ERROR) .of(MANY_VALUES_MEAN); // For datasets of many double values created from an iterable, we test many combinations of // finite and non-finite values: for (ManyValues values : ALL_MANY_VALUES) { StatsAccumulator accumulator = new StatsAccumulator();
Created: Fri Dec 26 12:43:10 GMT 2025 - Last Modified: Thu Dec 11 20:45:32 GMT 2025 - 36.9K bytes - Click Count (0) -
guava-tests/test/com/google/common/math/QuantilesTest.java
long[] dataset = Longs.toArray(SIXTEEN_SQUARES_LONGS); assertThat(Quantiles.scale(10).index(1).compute(dataset)) .isWithin(ALLOWED_ERROR) .of(SIXTEEN_SQUARES_DECILE_1); assertThat(dataset).asList().isEqualTo(SIXTEEN_SQUARES_LONGS); } public void testScale_index_compute_intVarargs() { int[] dataset = Ints.toArray(SIXTEEN_SQUARES_INTEGERS);
Created: Fri Dec 26 12:43:10 GMT 2025 - Last Modified: Thu Dec 11 20:45:32 GMT 2025 - 29.8K bytes - Click Count (0) -
android/guava-tests/test/com/google/common/math/QuantilesTest.java
long[] dataset = Longs.toArray(SIXTEEN_SQUARES_LONGS); assertThat(Quantiles.scale(10).index(1).compute(dataset)) .isWithin(ALLOWED_ERROR) .of(SIXTEEN_SQUARES_DECILE_1); assertThat(dataset).asList().isEqualTo(SIXTEEN_SQUARES_LONGS); } public void testScale_index_compute_intVarargs() { int[] dataset = Ints.toArray(SIXTEEN_SQUARES_INTEGERS);
Created: Fri Dec 26 12:43:10 GMT 2025 - Last Modified: Thu Dec 11 20:45:32 GMT 2025 - 29.8K bytes - Click Count (0) -
android/guava/src/com/google/common/math/LinearTransformation.java
public static LinearTransformation horizontal(double y) { checkArgument(isFinite(y)); double slope = 0.0; return new RegularLinearTransformation(slope, y); } /** * Builds an instance for datasets which contains {@link Double#NaN}. The {@link #isHorizontal} * and {@link #isVertical} methods return {@code false} and the {@link #slope}, and {@link
Created: Fri Dec 26 12:43:10 GMT 2025 - Last Modified: Mon Aug 11 19:31:30 GMT 2025 - 9.7K bytes - Click Count (0)