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add outcomes to all MOO objectives #524

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add outcomes to all MOO objectives #524

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sdaulton
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Summary: see title

Differential Revision: D23311657

Summary: Avoid torch.stack, since this makes a copy. And avoid unnecessary `expand`s

Differential Revision: D23311544

fbshipit-source-id: 5642b70a2215e40c6c3bed7c765932fb896c3ca4
…sition_function (#523)

Summary:
Pull Request resolved: #523

see title

Differential Revision: D23311646

fbshipit-source-id: 16102ebae4fd62439c5d15b6b68eefb4eca8e744
Summary: see title

Differential Revision: D23311657

fbshipit-source-id: 83b6bee9dc1b62f0eccd19aeff24070ba958b442
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This pull request was exported from Phabricator. Differential Revision: D23311657

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This pull request has been merged in 65e9e61.

facebook-github-bot pushed a commit that referenced this pull request Sep 11, 2020
Summary:
#### New Features
* Constrained Multi-Objective tutorial (#493)
* Multi-fidelity Knowledge Gradient tutorial (#509)
* Support for batch qMC sampling (#510)
* New `evaluate` method for `qKnowledgeGradient` (#515)

#### Compatibility
* Require PyTorch >=1.6 (#535)
* Require GPyTorch >=1.2 (#535)
* Remove deprecated `botorch.gen module` (#532)

#### Bug fixes
* Fix bad backward-indexing of task_feature in `MultiTaskGP` (#485)
* Fix bounds in constrained Branin-Currin test function (#491)
* Fix max_hv for C2DTLZ2 and make Hypervolume always return a float (#494)
* Fix bug in `draw_sobol_samples` that did not use the proper effective dimension (#505)
* Fix constraints for `q>1` in `qExpectedHypervolumeImprovement` (c80c4fd)
* Only use feasible observations in partitioning for `qExpectedHypervolumeImprovement`
  in `get_acquisition_function` (#523)
* Improved GPU compatibility for `PairwiseGP` (#537)

#### Performance Improvements
* Reduce memory footprint in `qExpectedHypervolumeImprovement` (#522)
* Add `(q)ExpectedHypervolumeImprovement` to nonnegative functions
  [for better initialization] (#496)

#### Other changes
* Support batched `best_f` in `qExpectedImprovement` (#487)
* Allow to return full tree of solutions in `OneShotAcquisitionFunction` (#488)
* Added `construct_inputs` class method to models to programmatically construct the
  inputs to the constructor from a standardized `TrainingData` representation
  (#477, #482, 3621198)
* Acqusiition function constructors now accept catch-all `**kwargs` options
  (#478, e5b6935)
* Use `psd_safe_cholesky` in `qMaxValueEntropy` for better numerical stabilty (#518)
* Added `WeightedMCMultiOutputObjective` (81d91fd)
* Add ability to specify `outcomes` to all multi-output objectives (#524)
* Return optimization output in `info_dict` for `fit_gpytorch_scipy` (#534)
* Use `setuptools_scm` for versioning (#539)

Pull Request resolved: #542

Reviewed By: sdaulton

Differential Revision: D23645619

Pulled By: Balandat

fbshipit-source-id: 0384f266cbd517aacd5778a6e2680336869bb31c
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