- 29 Mar, 2018 12 commits
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Jon Shlens authored
fixed dimension compatibility issue for numpy
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Mark Daoust authored
Docs: Adds eager notebook to the getting started samples
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Mark Daoust authored
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Mark Daoust authored
Fix autograph link in eager execution demo.
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Mark Daoust authored
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Mark Daoust authored
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Billy Lamberta authored
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Billy Lamberta authored
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Zi Yin authored
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Mark Daoust authored
Add eager execution demo.
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Akshay Agrawal authored
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Taylor Robie authored
* add end-to-end tests for wide_deep delint * address PR comments
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- 28 Mar, 2018 3 commits
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Karmel Allison authored
* Adding export_dir and model saving for Resnet * Moving to utils for tests * Adding batch_size * Adding multi-gpu export warning * Responding to CR * Py3 compliance
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Mark Sandler authored
* PiperOrigin-RevId: 189857068 * PiperOrigin-RevId: 190089200 * Merge pull request #3702 from cclauss/from-six.moves-import-xrange-yet-again from six.moves import xrange (en masse) YET AGAIN PiperOrigin-RevId: 190255581 * I Fixes bunch of model tests that were using python2 functions. II Updates mobilenet code: 1) Mobilenet usage example 2) Links to all checkpoints and updated README 3) Performance graphs PiperOrigin-RevId: 190300379 * PiperOrigin-RevId: 190306214 * Updates notebook to reflect canonical repository location and fixes few variable names.
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Qianli Scott Zhu authored
* Add benchmark upload util to bigquery. Also update the benchmark logger and bigquery schema for the errors found during the integration test. * Fix lint error. * Update test to clear all the env vars during test. This was causing error since the Kokoro test has TF_PKG=tf-nightly injected during test. * Update lintrc to ignore google related package. * Another attempt to fix lint import error. * Address the review comment. * Fix lint error. * Another fix for lint. * Update test comment for env var clean up.
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- 27 Mar, 2018 6 commits
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Qianli Scott Zhu authored
* Update the importing logic for cpuinfo and psutil. Those two libs are usually not installed by default, and we should not force people to install them if they just want to run resnet. * Add pylint warning suppression.
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Katherine Wu authored
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Taylor Robie authored
* Add golden test util to streamline symbolic and numerical comparison to reference graphs, and apply golden tests to ResNet. update tests use more concise logic for path property delint add some comments delint address PR comments make resnet tests more concise, and supress warning test in py2 change resnet name template more shuffling of data dirs address PR comments and add tensorflow version info Remove subTest due to py2 switch from tf.__version__ to tf.VERSION, and include tf.GIT_VERSION supress lint error from json load unpack * address PR comments * address PR comments * delint
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Nicholas Connor authored
PR #3460 renamed FLAGS.epochs_per_eval to flags.epochs_between_evals; it missed this one
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Taylor Robie authored
* add requirements.txt now that there are dependencies beyond tensorflow * direct pip info to README
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derekjchow authored
Update Installation.md
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- 26 Mar, 2018 5 commits
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Qianli Scott Zhu authored
* Init test for logging benchmark run. * Fix collect CPU info. * Update max split for handling GPU information. * Another fix for parse GPU info. * Fix GPU and CPU info collector. * Update logging function to be static. * Remove the cifar10 logging and fix a lint error. * Address the review comment. * Fix lint error. * Fix lint error for logger and logger_test. * Another lint fix for the test. * Simplify the CPU info logging. We will start in a conserative way, and probably add more info in future. * Remove unused dependencies.
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Yukun Zhu authored
Fix typo.
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hsm207 authored
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Yukun Zhu authored
deeplab_demo notebook py2 and py3 support
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Fahim Mannan authored
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- 23 Mar, 2018 9 commits
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Qianli Scott Zhu authored
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Qianli Scott Zhu authored
* Update reset model for benchmark logging. To enable benchmark logging, just add "--hooks LoggingMetricHook" * Benchmark logger fix for resnet. 1. Update default at_end to False for metric logger to avoid checkpoint error. 2. Update resnet run to log final evaluation result. * Update log output for final eval_result. * Typo fix. * Unset the default value for benchmark_log_dir. Usually the benchmark should be logged to different directly for each run. Having a default value will hide the choice from user. * Bug fix for benchmark logger initialization. * Fix lint error. * Address the review comment. 1. Update the logger to cover evaluation result. 2. Move the flag to performance parser. * Undo the change for arg_parser.
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maximneumann authored
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Taylor Robie authored
* move wide_deep parser * move mnist parsers
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Yukun Zhu authored
syntax error : download_and_convert_VOC2012.sh
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Yukun Zhu authored
Add mobilenetv2 support in deeplab
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Yukun Zhu authored
Fix DeprecationWarning
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Yukun Zhu authored
Update comment on folder structure
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Liang-Chieh Chen authored
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- 22 Mar, 2018 5 commits
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Neal Wu authored
Updated README run instructions
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Neal Wu authored
Add a tf.summary.scalar call for L2 loss in resnet
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Neal Wu authored
from six.moves import xrange (en masse) YET AGAIN
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pkulzc authored
* Force cast of num_classes to integer PiperOrigin-RevId: 188335318 * Updating config util to allow overwriting of cosine decay learning rates. PiperOrigin-RevId: 188338852 * Make box_list_ops.py and box_list_ops_test.py work with C API enabled. The C API has improved shape inference over the original Python code. This causes some previously-working conds to fail. Switching to smart_cond fixes this. Another effect of the improved shape inference is that one of the failures tested gets caught earlier, so I modified the test to reflect this. PiperOrigin-RevId: 188409792 * Fix parallel event file writing issue. Without this change, the event files might get corrupted when multiple evaluations are run in parallel. PiperOrigin-RevId: 188502560 * Deprecating the boolean flag of from_detection_checkpoint. Replace with a string field fine_tune_checkpoint_type to train_config to provide extensibility. The fine_tune_checkpoint_type can currently take value of `detection`, `classification`, or others when the restore_map is overwritten. PiperOrigin-RevId: 188518685 * Automated g4 rollback of changelist 188502560 PiperOrigin-RevId: 188519969 * Introducing eval metrics specs for Coco Mask metrics. This allows metrics to be computed in tensorflow using the tf.learn Estimator. PiperOrigin-RevId: 188528485 * Minor fix to make object_detection/metrics/coco_evaluation.py python3 compatible. PiperOrigin-RevId: 188550683 * Updating eval_util to handle eval_metric_ops from multiple `DetectionEvaluator`s. PiperOrigin-RevId: 188560474 * Allow tensor input for new_height and new_width for resize_image. PiperOrigin-RevId: 188561908 * Fix typo in fine_tune_checkpoint_type name in trainer. PiperOrigin-RevId: 188799033 * Adding mobilenet feature extractor to object detection. PiperOrigin-RevId: 188916897 * Allow label maps to optionally contain an explicit background class with id zero. PiperOrigin-RevId: 188951089 * Fix boundary conditions in random_pad_to_aspect_ratio to ensure that min_scale is always less than max_scale. PiperOrigin-RevId: 189026868 * Fallback on from_detection_checkpoint option if fine_tune_checkpoint_type isn't set. PiperOrigin-RevId: 189052833 * Add proper names for learning rate schedules so we don't see cryptic names on tensorboard. PiperOrigin-RevId: 189069837 * Enforcing that all datasets are batched (and then unbatched in the model) with batch_size >= 1. PiperOrigin-RevId: 189117178 * Adding regularization to total loss returned from DetectionModel.loss(). PiperOrigin-RevId: 189189123 * Standardize the names of loss scalars (for SSD, Faster R-CNN and R-FCN) in both training and eval so they can be compared on tensorboard. Log localization and classification losses in evaluation. PiperOrigin-RevId: 189189940 * Remove negative test from box list ops test. PiperOrigin-RevId: 189229327 * Add an option to warmup learning rate in manual stepping schedule. PiperOrigin-RevId: 189361039 * Replace tf.contrib.slim.tfexample_decoder.LookupTensor with object_detection.data_decoders.tf_example_decoder.LookupTensor. PiperOrigin-RevId: 189388556 * Force regularization summary variables under specific family names. PiperOrigin-RevId: 189393190 * Automated g4 rollback of changelist 188619139 PiperOrigin-RevId: 189396001 * Remove step 0 schedule since we do a hard check for it after cl/189361039 PiperOrigin-RevId: 189396697 * PiperOrigin-RevId: 189040463 * PiperOrigin-RevId: 189059229 * PiperOrigin-RevId: 189214402 * Force regularization summary variables under specific family names. PiperOrigin-RevId: 189393190 * Automated g4 rollback of changelist 188619139 PiperOrigin-RevId: 189396001 * Make slim python3 compatible. * Monir fixes. * Add TargetAssignment summaries in a separate family. PiperOrigin-RevId: 189407487 * 1. Setting `family` keyword arg prepends the summary names twice with the same name. Directly adding family suffix to the name gets rid of this problem. 2. Make sure the eval losses have the same name. PiperOrigin-RevId: 189434618 * Minor fixes to make object detection tf 1.4 compatible. PiperOrigin-RevId: 189437519 * Call the base of mobilenet_v1 feature extractor under the right arg scope and set batchnorm is_training based on the value passed in the constructor. PiperOrigin-RevId: 189460890 * Automated g4 rollback of changelist 188409792 PiperOrigin-RevId: 189463882 * Update object detection syncing. PiperOrigin-RevId: 189601955 * Add an option to warmup learning rate, hold it constant for a certain number of steps and cosine decay it. PiperOrigin-RevId: 189606169 * Let the proposal feature extractor function in faster_rcnn meta architectures return the activations (end_points). PiperOrigin-RevId: 189619301 * Fixed bug which caused masks to be mostly zeros (caused by detection_boxes being in absolute coordinates if scale_to_absolute=True. PiperOrigin-RevId: 189641294 * Open sourcing Mobilenetv2 + SSDLite. PiperOrigin-RevId: 189654520 * Remove unused files.
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cclauss authored
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