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gov2.template
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# Anserini Regressions: Gov2
**Models**: various bag-of-words approaches
This page describes regressions for the Terabyte Tracks from TREC 2004 to 2006, which uses the [Gov2 collection](http://ir.dcs.gla.ac.uk/test_collections/gov2-summary.htm).
The exact configurations for these regressions are stored in [this YAML file](${yaml}).
Note that this page is automatically generated from [this template](${template}) as part of Anserini's regression pipeline, so do not modify this page directly; modify the template instead.
From one of our Waterloo servers (e.g., `orca`), the following command will perform the complete regression, end to end:
```
python src/main/python/run_regression.py --index --verify --search --regression ${test_name}
```
## Indexing
Typical indexing command:
```
${index_cmds}
```
The directory `/path/to/gov2/` should be the root directory of the [Gov2 collection](http://ir.dcs.gla.ac.uk/test_collections/gov2-summary.htm), i.e., `ls /path/to/gov2/` should bring up a bunch of subdirectories, `GX000` to `GX272`.
For additional details, see explanation of [common indexing options](${root_path}/docs/common-indexing-options.md).
## Retrieval
Topics and qrels are stored [here](https://github.com/castorini/anserini-tools/tree/master/topics-and-qrels), which is linked to the Anserini repo as a submodule.
They are downloaded from NIST:
+ [`topics.terabyte04.701-750.txt`](https://github.com/castorini/anserini-tools/tree/master/topics-and-qrels/topics.terabyte04.701-750.txt): [topics for the TREC 2004 Terabyte Track (Topics 701-750)](http://trec.nist.gov/data/terabyte/04/04topics.701-750.txt)
+ [`topics.terabyte05.751-800.txt`](https://github.com/castorini/anserini-tools/tree/master/topics-and-qrels/topics.terabyte05.751-800.txt): [topics for the TREC 2005 Terabyte Track (Topics 751-800)](http://trec.nist.gov/data/terabyte/05/05.topics.751-800.txt)
+ [`topics.terabyte06.801-850.txt`](https://github.com/castorini/anserini-tools/tree/master/topics-and-qrels/topics.terabyte06.801-850.txt): [topics for the TREC 2006 Terabyte Track (Topics 801-850)](http://trec.nist.gov/data/terabyte/06/06.topics.801-850.txt)
+ [`qrels.terabyte04.701-750.txt`](https://github.com/castorini/anserini-tools/tree/master/topics-and-qrels/qrels.terabyte04.701-750.txt): [qrels for the TREC 2004 Terabyte Track (Topics 701-750)](http://trec.nist.gov/data/terabyte/04/04.qrels.12-Nov-04)
+ [`qrels.terabyte05.751-800.txt`](https://github.com/castorini/anserini-tools/tree/master/topics-and-qrels/qrels.terabyte05.751-800.txt): [qrels for the TREC 2005 Terabyte Track (Topics 751-800)](http://trec.nist.gov/data/terabyte/05/05.adhoc_qrels)
+ [`qrels.terabyte06.801-850.txt`](https://github.com/castorini/anserini-tools/tree/master/topics-and-qrels/qrels.terabyte06.801-850.txt): [qrels for the TREC 2006 Terabyte Track (Topics 801-850)](http://trec.nist.gov/data/terabyte/06/qrels.tb06.top50)
After indexing has completed, you should be able to perform retrieval as follows:
```
${ranking_cmds}
```
Evaluation can be performed using `trec_eval`:
```
${eval_cmds}
```
## Effectiveness
With the above commands, you should be able to reproduce the following results:
${effectiveness}