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Multi datasets #123

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Mar 28, 2023
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681698d
add multiple datasets support
Benw8888 Mar 9, 2023
ac1b9f1
Merge branch 'main' of github.com:EleutherAI/elk into multi-datasets
Benw8888 Mar 9, 2023
b864c77
train_reporter works on a list of layers now
Benw8888 Mar 10, 2023
7d7d97c
changing printed layer names
Benw8888 Mar 10, 2023
4fe61e9
fixed concatenation bug
Benw8888 Mar 11, 2023
fe61d67
minor edits
Benw8888 Mar 13, 2023
74da878
fixed pyright issues
Benw8888 Mar 13, 2023
569ef05
Merge branch 'main' of github.com:EleutherAI/elk into multi-datasets
Benw8888 Mar 14, 2023
b62b679
Merge branch 'main' into multi-datasets
norabelrose Mar 20, 2023
fe94c22
Fix tests
norabelrose Mar 20, 2023
bba24d8
Now working sorta
norabelrose Mar 22, 2023
03ba6e0
Skip slow BalancedBatchSampler test
norabelrose Mar 22, 2023
15ab351
Slightly relax test_output_is_roughly_balanced
norabelrose Mar 22, 2023
a80369e
Make BalancedSampler deterministic
norabelrose Mar 22, 2023
d304ab3
InitVar
norabelrose Mar 22, 2023
761c82d
Support multi class again
norabelrose Mar 22, 2023
f29743b
Fix naming issue
norabelrose Mar 22, 2023
b7b7e23
Support few shot prompts
norabelrose Mar 23, 2023
1afb563
Merge branch 'main' into multi-datasets
norabelrose Mar 23, 2023
225d4c7
fix multiclass labels
AlexTMallen Mar 23, 2023
9368dc8
Merge branch 'multi-datasets' of github.com:EleutherAI/elk into multi…
AlexTMallen Mar 23, 2023
a858b65
Merge branch 'main' into multi-datasets
norabelrose Mar 24, 2023
5dc2ec6
Merge branch 'multi-datasets' of github.com:EleutherAI/elk into multi…
norabelrose Mar 24, 2023
b1b95e5
Fix dumb part of test failures
norabelrose Mar 25, 2023
ee3911e
Fix assert_allclose warning
norabelrose Mar 25, 2023
a55b3de
Switch to torch.testing.assert_close in EigenReporter test
norabelrose Mar 25, 2023
44dc25c
Shuffle load_prompts output by default
norabelrose Mar 25, 2023
93d8d87
Fix smoke test failure
norabelrose Mar 25, 2023
fad4d74
Remove debug prints
AlexTMallen Mar 25, 2023
0a054f4
Remove more debug print statements
AlexTMallen Mar 25, 2023
177eec2
make min_memory usable; broadcast mmax_examples in __post_init__
AlexTMallen Mar 26, 2023
3a762b0
prompt loading refactor to enable better streaming
AlexTMallen Mar 26, 2023
f66c054
remove shuffle arg
AlexTMallen Mar 26, 2023
d3d87fc
remove unused @dataclass
lauritowal Mar 26, 2023
3d08147
merge
lauritowal Mar 27, 2023
c9a43e1
[pre-commit.ci] auto fixes from pre-commit.com hooks
pre-commit-ci[bot] Mar 27, 2023
94290aa
add concatenated_layer_offset to eval
lauritowal Mar 27, 2023
f9298e4
Merge branch 'multi-datasets' of https://github.com/EleutherAI/elk in…
lauritowal Mar 27, 2023
3765c4f
add self.
lauritowal Mar 27, 2023
2b05193
replace target with data
lauritowal Mar 27, 2023
83731bb
add self.
lauritowal Mar 27, 2023
764fda9
remove second arg
lauritowal Mar 27, 2023
d2c66b0
fix passing the wrong params for world size / rank
thejaminator Mar 28, 2023
9186326
Update prompt_loading.py
lauritowal Mar 28, 2023
3f99a4d
fix pre-commit errors
lauritowal Mar 28, 2023
148130d
[pre-commit.ci] auto fixes from pre-commit.com hooks
pre-commit-ci[bot] Mar 28, 2023
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Merge branch 'main' into multi-datasets
  • Loading branch information
norabelrose committed Mar 23, 2023
commit 1afb5636e9368c2ccdd065951ff8aa9573a88746
24 changes: 8 additions & 16 deletions README.md
Original file line number Diff line number Diff line change
Expand Up @@ -4,7 +4,7 @@

Because language models are trained to predict the next token in naturally occurring text, they often reproduce common human errors and misconceptions, even when they "know better" in some sense. More worryingly, when models are trained to generate text that's rated highly by humans, they may learn to output false statements that human evaluators can't detect. We aim to circumvent this issue by directly [**eliciting latent knowledge**](https://docs.google.com/document/d/1WwsnJQstPq91_Yh-Ch2XRL8H_EpsnjrC1dwZXR37PC8/edit) (ELK) inside the activations of a language model.

Specifically, we're building on the **Contrast Consistent Search** (CCS) method described in the paper [Discovering Latent Knowledge in Language Models Without Supervision](https://arxiv.org/abs/2212.03827) by Burns et al. (2022). In CCS, we search for features in the hidden states of a language model which satisfy certain logical consistency requirements. It turns out that these features are often useful for question-answering and text classification tasks, even though the features are trained without labels.
Specifically, we're building on the **Contrastive Representation Clustering** (CRC) method described in the paper [Discovering Latent Knowledge in Language Models Without Supervision](https://arxiv.org/abs/2212.03827) by Burns et al. (2022). In CRC, we search for features in the hidden states of a language model which satisfy certain logical consistency requirements. It turns out that these features are often useful for question-answering and text classification tasks, even though the features are trained without labels.

### Quick **Start**

Expand All @@ -20,29 +20,21 @@ elk elicit microsoft/deberta-v2-xxlarge-mnli imdb

This will automatically download the model and dataset, run the model and extract the relevant representations if they aren't cached on disk, fit reporters on them, and save the reporter checkpoints to the `elk-reporters` folder in your home directory. It will also evaluate the reporter classification performance on a held out test set and save it to a CSV file in the same folder.

The following will generate a CCS (Contrast Consistent Search) reporter instead of the CRC-based reporter, which is the default.

```bash
elk eval naughty-northcutt microsoft/deberta-v2-xxlarge-mnli imdb
elk elicit microsoft/deberta-v2-xxlarge-mnli imdb --net ccs
```

This will evaluate the probe from the run naughty-northcutt on the hidden states extracted from the model deberta-v2-xxlarge-mnli for the imdb dataset. It will result in an `eval.csv` and `cfg.yaml` file, which are stored under a subfolder in `elk-reporters/naughty-northcutt/transfer_eval`.

## Caching

The hidden states resulting from `elk elicit` are cached as a HuggingFace dataset to avoid having to recompute them every time we want to train a probe. The cache is stored in the same place as all other HuggingFace datasets, which is usually `~/.cache/huggingface/datasets`.

## Other commands

To only extract the hidden states for the model `model` and the dataset `dataset` and save them to `my_output_dir`, without training any reporters, you can run:
The following command will evaluate the probe from the run naughty-northcutt on the hidden states extracted from the model deberta-v2-xxlarge-mnli for the imdb dataset. It will result in an `eval.csv` and `cfg.yaml` file, which are stored under a subfolder in `elk-reporters/naughty-northcutt/transfer_eval`.

```bash
elk extract microsoft/deberta-v2-xxlarge-mnli imdb -o my_output_dir
elk eval naughty-northcutt microsoft/deberta-v2-xxlarge-mnli imdb
```

The following will generate a CCS reporter instead of the Eigen reporter, which is the default.
## Caching

```bash
elk elicit microsoft/deberta-v2-xxlarge-mnli imdb --net ccs
```
The hidden states resulting from `elk elicit` are cached as a HuggingFace dataset to avoid having to recompute them every time we want to train a probe. The cache is stored in the same place as all other HuggingFace datasets, which is usually `~/.cache/huggingface/datasets`.

## Development
Use `pip install pre-commit && pre-commit install` in the root folder before your first commit.
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